Ecological water resource restoration device

By combining aquatic plant purification, particle adsorption and degradation, and aeration oxygenation into a three-dimensional purification system, the problem of insufficient purification in existing floating bed systems has been solved, achieving deep and comprehensive restoration of water resources, improving purification efficiency and reducing energy consumption.

CN121292668APending Publication Date: 2026-01-09HENAN SHUITOU LONGSHAN WATER ECOLOGICAL DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202511564508.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-30
Publication Date
2026-01-09

AI Technical Summary

Technical Problem

Existing floating bed systems rely on aquatic plants for purification, making it difficult to achieve deep and comprehensive restoration of water resources.

Method used

It adopts a combination of floating frame, planting trough, purification frame, pump assembly, aeration system and linkage components, and combines a three-dimensional purification system of aquatic plant purification, particle adsorption and degradation and aeration oxygenation. It achieves multi-functional conversion and adaptive adjustment through servo motor and solar power.

Benefits of technology

It achieves multi-level purification of water resources, enhances the depth and comprehensiveness of water body restoration, reduces human intervention, and is economical and efficient.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of water resource restoration, and discloses an ecological water resource restoration device which comprises a floating frame and two planting grooves symmetrically formed in the top face of the floating frame, two planting frames corresponding to the planting grooves are symmetrically and fixedly installed on the top face of the floating frame, and an overturning shell is arranged on the inner side of the floating frame; a supporting structure is arranged between the overturning shell and the floating frame, an output assembly is arranged on the side face of the floating frame, a pump assembly is arranged on the inner side of the overturning shell, a linkage assembly is arranged between the supporting structure and the pump assembly, two purification frames are symmetrically installed on the bottom face of the floating frame in a sliding mode, and a connecting plate is fixedly installed between the two purification frames. The ecological water resource restoration device combines triple effects of aquatic plant absorption, purification particle adsorption and degradation and aeration oxygenation, plants are communicated with a water body through the planting grooves for efficient purification, particles are in full contact with pollutants through shaking, an aeration system supplies oxygen in multiple depths and promotes water body circulation, a three-dimensional purification system is formed, and the limitation of single purification is overcome.
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Description

Technical Field

[0001] This invention relates to the field of water resource restoration technology, and in particular to an ecological water resource restoration device. Background Technology

[0002] Ecological water resource restoration refers to the use of ecological means (rather than purely engineering or chemical methods) to repair damaged aquatic ecosystems (such as rivers, lakes, wetlands, and groundwater), restoring their hydrological functions, water purification capacity, and biodiversity, ultimately achieving the goals of "water self-purification, ecological balance, and sustainable utilization." It differs from traditional "end-of-pipe treatment," emphasizing "respect for natural laws" and enabling water bodies to possess the capacity for self-repair and maintenance of health through the reconstruction or assistance of ecosystems.

[0003] A search revealed Chinese patent CN221141469U, which discloses a floating bed component and a floating bed for water ecological restoration. This utility model provides a floating bed component for water ecological restoration, comprising a main body and four splicing plates. The upper surface of the main body has a through-hole for placing a planting basket. The main body is a regular quadrilateral plate, with arc-shaped transition surfaces formed at its corners. A splicing plate is mounted on each arc-shaped transition surface, parallel to the upper surface of the main body, and its thickness is less than that of the main body. The splicing plate is centrally mounted on the arc-shaped transition surface. At least one connecting hole is provided on the upper surface of each splicing plate. This design allows for quick and easy connection of the floating bed components, making it convenient to use. However, in practical application, this solution still has the following shortcomings:

[0004] In the field of ecological water resource restoration, the aforementioned floating beds, due to their modular design and flexible splicing components, can be quickly assembled on-site according to the area and shape of the water body to be treated, and the coverage area of ​​the floating beds can be flexibly adjusted to adapt to different scenarios. However, the aforementioned floating bed system relies excessively on the aquatic plants (such as canna lilies, foxtail algae, reeds, etc.) planted on them for single purification. This technical approach has obvious limitations and is difficult to achieve deep and comprehensive restoration of water resources. Summary of the Invention

[0005] The technical problem to be solved by the present invention is that although the existing technology can quickly assemble floating beds through splicing parts, it is difficult to restore water resources by purifying the water through plants on the floating beds alone. Therefore, we propose an ecological water resource restoration device.

[0006] To achieve the above objectives, this application adopts the following technical solution: an ecological water resource restoration device, comprising a floating frame and two planting troughs symmetrically opened on the top surface of the floating frame. Two planting frames corresponding to the planting troughs are symmetrically and fixedly installed on the top surface of the floating frame. A flip shell is provided on the inner side of the floating frame. A support structure is provided between the flip shell and the floating frame. An output component is provided on the side of the floating frame. A pumping component is provided on the inner side of the flip shell. A linkage component is provided between the support structure and the pumping component. Two purification frames are symmetrically and slidably installed on the bottom surface of the floating frame. A connecting plate is fixedly installed between the two purification frames. A follow-up structure is provided between the purification frames and the support structure.

[0007] The output component includes a telescopic branch pipe fixedly installed on the side of the flip shell. The telescopic end of the telescopic branch pipe is provided with a rotary joint. The outer wall of the rotary joint is provided with a number of arc-shaped pipes arranged in a ring array. The telescopic branch pipe is provided with an adjustment mechanism.

[0008] Preferably, the support structure includes a sealing shell fixedly installed on the inner wall of the floating frame, a servo motor fixedly installed on the inner wall of the sealing shell, and a support shaft coaxially arranged between the side of the flipping shell and the inner wall of the floating frame.

[0009] Preferably, the pump assembly includes a fixed base plate fixedly installed on the inner wall of the flip shell. A plurality of partition plates arranged in a linear array are fixedly installed on the top surface of the fixed base plate. A pump chamber is provided between two adjacent partition plates. An output pipe corresponding to the plurality of pump chambers is provided through the bottom surface of the fixed base plate, and the top end of the telescopic branch pipe is connected to the output pipe. A suction pipe corresponding to the plurality of pump chambers is provided through the side of the flip shell.

[0010] Preferably, the support shaft has a relief opening 2 corresponding to the suction tube.

[0011] Preferably, the inner walls of the output pipe and the suction pipe are equipped with one-way valves with opposite flow directions, and the feed end of the suction pipe is screwed with a filter screen.

[0012] Preferably, the linkage assembly includes piston plates slidably mounted on the inner walls of several pump chambers, a crankshaft rotatably mounted on the inner wall of the tilting shell above the piston plates, several collars corresponding to the piston plates being rotatably fitted on the outer wall of the crankshaft, a transmission rod being hinged between the outer wall of the collars and the top surface of the piston plates, a mounting bracket being fixedly mounted on the inner wall of the tilting shell, a driven bevel gear being rotatably mounted on the inner wall of the mounting bracket, a drive bevel gear meshing with the driven bevel gear being rotatably mounted on the inner top surface of the mounting bracket, and the driven bevel gear being connected to the crankshaft via a driven pulley and a synchronous belt.

[0013] Preferably, the linkage component further includes two one-way bearings with opposite locking directions mounted on the output end of the servo motor. The outer wall of one of the one-way bearings is fitted with a drive gear ring, and the outer wall of the other one-way bearing is fixedly connected to the side of the flip shell. A support plate is fixedly installed on the side of the flip shell, and a transmission gear that meshes with the drive gear ring is rotatably mounted on the bottom surface of the support plate. The transmission gear and the drive bevel gear are connected by a transmission wheel and a transmission belt.

[0014] Preferably, the adjustment mechanism includes a waterproof shell fixedly installed on the outer wall of the telescopic branch pipe, an electric push rod fixedly installed on the inner wall of the waterproof shell, and the telescopic end of the electric push rod is fixedly connected to the telescopic end of the telescopic branch pipe, and a paddle disc is fixedly installed on the top surface of several arc-shaped pipes.

[0015] Preferably, two solar panels corresponding to the servo motor are symmetrically fixedly installed on the top surface of the floating frame, and two clearance openings corresponding to the arc-shaped tube and the propeller disk are symmetrically opened on the top surface of the floating frame.

[0016] Preferably, the follow-up structure includes four fixed plates symmetrically fixedly installed on the bottom surface of the floating frame. A spring is fixedly installed between the side of the fixed plate and the outer wall of the purification frame. A fixed plate is fixedly fitted on the outer wall of the support shaft. A number of protrusions arranged in a circular array are fixedly installed on the side of the fixed plate. A top rod corresponding to the protrusion is fixedly installed on the side of one of the purification frames.

[0017] The technical effects and advantages of this invention are as follows:

[0018] In this invention, the entire device combines the triple functions of aquatic plant absorption, purification particle adsorption and degradation, and aeration and oxygenation. The plants are connected to the water body through the planting trough for efficient purification, the particles are shaken to fully contact the pollutants, and the aeration system provides oxygen at multiple depths and promotes water circulation, forming a three-dimensional purification system that overcomes the limitations of single purification.

[0019] In this invention, the length of the telescopic branch pipe is adjusted by an electric push rod to adapt the arc-shaped pipe to different water depths. The servo motor switches between aeration and pumping oxygenation modes in both forward and reverse directions to meet diverse needs. The flipping mechanism, in conjunction with 180-degree rotation, enables function switching and improves the adaptability of the device.

[0020] In this invention, the solar panel provides power, which is environmentally friendly and energy-saving. The servo motor drives the piston to reciprocate for aeration and pumping, reducing manual intervention. When the filter is flipped, it shakes in conjunction with the filter frame, enhancing the particle purification capacity. No additional power is required, which balances purification effect and economy, making it suitable for long-term water body restoration. Attached Figure Description

[0021] The disclosure of this invention is illustrated with reference to the accompanying drawings. It should be understood that the drawings are for illustrative purposes only and are not intended to limit the scope of protection of this invention. In the drawings, the same reference numerals are used to refer to the same parts:

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention. Figure 1 ;

[0023] Figure 2 This is a schematic diagram of the overall structure of the present invention. Figure 2 ;

[0024] Figure 3 This is a schematic diagram of the floating frame structure of the present invention;

[0025] Figure 4 This is a schematic diagram of the flip-shell structure of the present invention;

[0026] Figure 5 for Figure 4 Enlarged structural diagram at point A in the middle;

[0027] Figure 6 This is a schematic diagram of the internal structure of the flip-top shell of the present invention;

[0028] Figure 7 for Figure 6 Enlarged structural diagram at point B;

[0029] Figure 8 This is a schematic diagram of the telescopic branch pipe and arc pipe structure of the present invention;

[0030] Figure 9 This is a schematic diagram of the flip shell, support shaft and fixed disk structure of the present invention.

[0031] Legend: 11. Floating frame; 12. Planting trough; 13. Planting frame; 14. Solar panel; 15. Clearance port one; 21. Flip-over shell; 22. Sealing shell; 23. Servo motor; 24. Support shaft; 31. Fixed base plate; 32. Divider plate; 33. Pump chamber; 34. Output pipe; 35. Suction pipe; 36. Clearance port two; 41. Piston plate; 42. Crankshaft; 43. Collar; 44. Drive rod; 45. 46. ​​Mounting bracket; 47. Driven bevel gear; 51. One-way bearing; 52. Drive gear ring; 53. Support plate; 54. Transmission gear; 61. Telescopic branch pipe; 62. Electric push rod; 63. Waterproof shell; 64. Rotary joint; 65. Arc-shaped tube; 66. Paddle disc; 71. Purification frame; 72. Connecting plate; 73. Fixing plate; 74. Spring; 75. Fixing disc; 76. Protrusion; 77. Top rod. Detailed Implementation

[0032] It is readily understood that, based on the technical solution of this invention, those skilled in the art can propose various interchangeable structural methods and implementations without altering the essential spirit of the invention. Therefore, the following detailed embodiments and accompanying drawings are merely illustrative examples of the technical solution of this invention and should not be considered as the entirety of the invention or as limitations or restrictions on the technical solution of this invention.

[0033] Reference Figure 1 , Figure 2 , Figure 4 and Figure 6 As shown, the present invention provides a technical solution: an ecological water resource restoration device, including a floating frame 11 and two planting troughs 12 symmetrically opened on the top surface of the floating frame 11. Two planting frames 13 corresponding to the planting troughs 12 are symmetrically fixedly installed on the top surface of the floating frame 11. A flip shell 21 is provided on the inner side of the floating frame 11. A support structure is provided between the flip shell 21 and the floating frame 11. Two purification frames 71 are symmetrically slidably installed on the bottom surface of the floating frame 11. A connecting plate 72 is fixedly installed between the two purification frames 71.

[0034] The support structure includes a sealing shell 22 fixedly installed on the inner wall of the floating frame 11. A servo motor 23 is fixedly installed on the inner wall of the sealing shell 22. Two solar panels 14 corresponding to the servo motor 23 are symmetrically fixedly installed on the top surface of the floating frame 11. A support shaft 24 coaxially arranged with the servo motor 23 is provided between the side of the flip shell 21 and the inner wall of the floating frame 11.

[0035] In use, aquatic plants can first be planted in the planting trough 12 and inside the planting frame 13 on the floating frame 11 so that the plants can purify the water. The planting trough 12 is connected to the water body through a through hole to ensure that the plants can purify the water. At the same time, water purification particles, such as natural and modified inorganic particles and biofunctional particles, can be filled inside the two purification frames 71. The floating frame 11 can be placed in the water that needs to be purified and floated. The aquatic plants and the water purification particles in the purification frames 71 can repair the water resources and achieve the purpose of purifying the water. When the floating frame 11 is placed in the water, the state of the entire device is as follows. Figure 1 As shown, the purification frame 71 is located in the water, while the flip shell 21 is located above the water surface. When the flip shell 21 is in use, the end of the support shaft 24 connected to the float frame 11 on its side can be provided with a spline and a spline groove between it and the float frame 11. This ensures that the flip shell 21 can be in a stable and secure position before and after flipping. The working principle and connection method of the spline and spline groove are existing mature technologies, and will not be elaborated on here.

[0036] Reference Figure 4 , Figure 6 and Figure 9As shown, a pump assembly is provided inside the tilting shell 21. The pump assembly includes a fixed base plate 31 fixedly installed on the inner wall of the tilting shell 21. Several partition plates 32 arranged in a linear array are fixedly installed on the top surface of the fixed base plate 31. A pump chamber 33 is provided between two adjacent partition plates 32. An output pipe 34 corresponding to several pump chambers 33 is provided through the bottom surface of the fixed base plate 31. The top end of the telescopic branch pipe 61 is connected to the output pipe 34. A suction pipe 35 corresponding to several pump chambers 33 is provided through the side of the tilting shell 21. One-way valves with opposite flow directions are installed on the inner walls of the output pipe 34 and the suction pipe 35. A filter screen is screwed to the feed end of the suction pipe 35. A relief port 36 corresponding to the suction pipe 35 is opened on the support shaft 24.

[0037] Reference Figure 4-7 As shown, a linkage assembly is provided between the support structure and the pump assembly. The linkage assembly includes a piston plate 41 that is slidably installed on the inner wall of several pump chambers 33. A crankshaft 42 located above the piston plate 41 is rotatably installed on the inner wall of the flip shell 21. Several collars 43 corresponding to the piston plate 41 are rotatably fitted on the outer wall of the crankshaft 42. A transmission rod 44 is hinged between the outer wall of the collar 43 and the top surface of the piston plate 41. A mounting bracket 45 is fixedly installed on the inner wall of the flip shell 21. A driven bevel gear 46 is rotatably installed on the inner wall of the mounting bracket 45. A drive bevel gear 47 that meshes with the driven bevel gear 46 is rotatably installed on the inner top surface of the mounting bracket 45. The driven bevel gear 46 and the crankshaft 42 are connected by a driven wheel and a synchronous belt.

[0038] The drive bevel gear 47 can be driven to rotate, and then drive the driven bevel gear 46 to rotate. In turn, the crankshaft 42 is driven to rotate through the driven wheel and the timing belt. When the crankshaft 42 rotates, the collar 43 on the crankshaft 42 is hinged to the piston plate 41 through the transmission rod 44. Therefore, it can drive several piston plates 41 to slide back and forth along the pump chamber 33, thereby generating suction pressure. When the piston plate 41 slides upward along the pump chamber 33, a negative pressure can be generated inside the pump chamber 33. Since the output pipe 34 and the suction pipe 35 are equipped with one-way valves with opposite flow directions, under the action of negative pressure, outside air can be drawn into the pump chamber 33 through the suction pipe 35.

[0039] Reference Figure 5 and Figure 6 As shown, the linkage assembly also includes two one-way bearings 51 with opposite locking directions mounted on the output end of the servo motor 23. The outer wall of one one-way bearing 51 is fitted with a drive gear ring 52, and the outer wall of the other one-way bearing 51 is fixedly connected to the side of the flip shell 21. A support plate 53 is fixedly installed on the side of the flip shell 21. A transmission gear 54 that meshes with the drive gear ring 52 is rotatably mounted on the bottom surface of the support plate 53. The transmission gear 54 and the drive bevel gear 47 are connected by a transmission wheel and a transmission belt.

[0040] The servo motor 23 is powered by the solar panel 14. The operator can turn on the servo motor 23 to rotate forward. Since the locking directions of the two one-way bearings 51 on the output end of the servo motor 23 are opposite, the servo motor 23 can drive the drive gear ring 52 to rotate when rotating forward, but cannot drive the flip shell 21 to rotate. When the drive gear ring 52 rotates, it can drive the transmission gear 54 that meshes with it to rotate. The transmission gear 54 and the drive bevel gear 47 are connected by a transmission wheel and a transmission belt.

[0041] Reference Figure 2 and Figure 8 As shown, the side of the floating frame 11 is provided with an output component, which includes a telescopic branch pipe 61 fixedly installed on the side of the flip shell 21. The telescopic end of the telescopic branch pipe 61 is provided with a rotary joint 64. The outer wall of the rotary joint 64 is provided with a number of arc-shaped pipes 65 arranged in a ring array. An adjustment mechanism is provided on the telescopic branch pipe 61.

[0042] The adjustment mechanism includes a waterproof shell 63 fixedly installed on the outer wall of the telescopic branch pipe 61. An electric push rod 62 is fixedly installed on the inner wall of the waterproof shell 63, and the telescopic end of the electric push rod 62 is fixedly connected to the telescopic end of the telescopic branch pipe 61. A propeller disk 66 is fixedly installed on the top surface of several arc-shaped pipes 65. Two clearance openings 15 corresponding to the arc-shaped pipes 65 and the propeller disk 66 are symmetrically opened on the top surface of the float frame 11.

[0043] When the piston plate 41 slides downwards, it can push the gas in the pump chamber 33 through the output pipe 34 into the telescopic branch pipe 61, and it can also be sprayed out along the rotary joint 64 and the arc-shaped pipe 65 to achieve the function of aeration in the water. Furthermore, by using the electric push rod 62, the length of the telescopic branch pipe 61 can be adjusted, thereby adjusting the depth of the arc-shaped pipe 65 to aerate water at different depths. Simultaneously, driven by the gas sprayed out from the arc-shaped pipe 65, the rotary joint 64 and the arc-shaped pipe 65 can rotate, driving the paddle disc 66 to rotate, causing the water to surge upwards so that the lower water can contact the air, thus playing a role in water resource restoration. Alternatively, in another method, the operator can first shorten the telescopic branch pipe 61 and then turn on the servo motor 23. When the reverse rotation is performed, the one-way bearing 51 connected to the flipping shell 21 is locked. Therefore, when the servo motor 23 reverses, it can drive the flipping shell 21 to rotate 180 degrees through the support shaft 24. The paddle disc 66 and the arc-shaped tube 65 can pass through the relief port 15. At this time, the suction pipe 35 is below the water surface and the telescopic branch pipe 61 is above the water surface. Then, the servo motor 23 is turned on to reverse, which can drive the piston plate 41 to slide back and forth, thereby drawing water into the pump chamber 33 and then discharging it through the arc-shaped tube 65. During the process of water being discharged along the arc-shaped tube 65, the water can fully contact the air, which plays a role in oxygenating and purifying the water. During the entire use of the suction pipe 35, the filter screen can filter the gas or water entering the suction pipe 35 to prevent clogging.

[0044] Reference Figure 1 , Figure 2 and Figure 9 As shown, a follower structure is provided between the purification frame 71 and the support structure. The follower structure includes four fixed plates 73 symmetrically fixedly installed on the bottom surface of the floating frame 11. Springs 74 are fixedly installed between the side of the fixed plate 73 and the outer wall of the purification frame 71. A fixed plate 75 is fixedly fitted on the outer wall of the support shaft 24. Several protrusions 76 arranged in a ring array are fixedly installed on the side of the fixed plate 75. A top rod 77 corresponding to the protrusions 76 is fixedly installed on the side of one purification frame 71.

[0045] During the flipping process of the flip shell 21, the support shaft 24 can drive the fixed plate 75 and the protrusion 76 to rotate. During the rotation of the protrusion 76, the push rod 77 can be pushed in sequence. When the push rod 77 is pushed, it can drive the purification frame 71 to slide. Under the action of the connecting plate 72, the two purification frames 71 can slide synchronously. At the same time, under the action of the spring 74, the sliding frequency of the purification frame 71 can be increased so as to shake and flip the water purification particles inside the purification frame 71, ensuring that the purification particles in the purification frame 71 can fully contact the water and play a role in restoring water resources.

[0046] Working principle: In use, aquatic plants can first be planted in the planting trough 12 and inside the planting frame 13 on the floating frame 11 so that the plants can purify the water. The planting trough 12 is connected to the water body through the through hole to ensure that the plants can achieve the purification effect. At the same time, water purification particles, such as natural and modified inorganic particles and biological functional particles, can be filled inside the two purification frames 71. The floating frame 11 can be placed in the water that needs to be purified and float. The aquatic plants and the water purification particles in the purification frames 71 can restore the water resources and achieve the purpose of purifying the water. When the floating frame 11 is placed in the water, the state of the entire device is as follows. Figure 1 As shown, the purification frame 71 and the telescopic branch pipe 61 are located in the water, while the flip shell 21 and the suction pipe 35 are located above the water surface.

[0047] When the flip shell 21 is in use, the end of the support shaft 24 connected to the floating frame 11 on its side can be provided with splines and spline grooves between it and the floating frame 11. This ensures that the flip shell 21 can be in a stable and secure position before and after flipping. The working principle and connection method of the splines and spline grooves are existing mature technologies and will not be described in detail here. The servo motor 23 is powered by the solar panel 14. The operator can turn on the servo motor 23 to rotate it in the forward direction. Since the locking directions of the two one-way bearings 51 on the output end of the servo motor 23 are opposite, the servo motor 23 can drive the drive gear ring 52 to rotate when rotating in the forward direction. The rotating shell 21 cannot be driven to rotate. When the drive gear ring 52 rotates, it can drive the transmission gear 54 that meshes with it to rotate. The transmission gear 54 and the drive bevel gear 47 are connected by a transmission wheel and a transmission belt. Therefore, the drive bevel gear 47 can be driven and can drive the driven bevel gear 46 to rotate. Then, the crankshaft 42 is driven to rotate through the driven wheel and the synchronous belt. When the crankshaft 42 rotates, since the collar 43 on the crankshaft 42 is hinged to the piston plate 41 through the transmission rod 44, it can drive several piston plates 41 to slide back and forth along the pump cavity 33, thereby generating suction pressure.

[0048] When the piston plate 41 slides upward along the pump chamber 33, a negative pressure is generated inside the pump chamber 33. Since the output pipe 34 and the suction pipe 35 are equipped with one-way valves with opposite flow directions, under the action of negative pressure, outside air can be drawn into the pump chamber 33 through the suction pipe 35. When the piston plate 41 slides downward, the gas in the pump chamber 33 can be pushed into the telescopic branch pipe 61 through the output pipe 34 and sprayed out along the rotary joint 64 and the arc-shaped pipe 65 to realize the function of aeration in the water. The length of the telescopic branch pipe 61 can be adjusted by using the electric push rod 62, thereby realizing the adjustment of the depth of the arc-shaped pipe 65 to aerate water at different depths. At the same time, driven by the gas sprayed out of the arc-shaped pipe 65, the rotary joint 64 and the arc-shaped pipe 65 can rotate and drive the paddle disc 66 to rotate, so that the water can surge upward so that the lower water can come into contact with the air, thus playing a role in water resource restoration.

[0049] The above describes the aeration method for the entire device. In another method, the operator can first shorten the telescopic branch pipe 61, and then turn on the servo motor 23 to reverse it. At this time, the one-way bearing 51 connected to the flip shell 21 is in a locked state. Therefore, when the servo motor 23 reverses, it can drive the flip shell 21 to rotate 180 degrees through the support shaft 24. The paddle disc 66 and the arc-shaped pipe 65 can pass through the relief port 15. At this time, the suction pipe 35 is below the water surface, and the telescopic branch pipe 61 is above the water surface. Then, turn on the servo motor 23 to reverse it, which can drive the piston plate 41 to slide back and forth, thereby drawing water into the pump chamber 33 and then discharging it through the arc-shaped pipe 65. During the process of water being discharged along the arc-shaped pipe 65, the water can fully contact the air, achieving the purpose of oxygenating and purifying the water. During the entire use of the suction pipe 35, the filter screen can filter the gas or water entering the suction pipe 35 to prevent clogging.

[0050] During the flipping process of the flip shell 21, the support shaft 24 can drive the fixed plate 75 and the protrusion 76 to rotate. During the rotation of the protrusion 76, the push rod 77 can be pushed in sequence. When the push rod 77 is pushed, it can drive the purification frame 71 to slide. Under the action of the connecting plate 72, the two purification frames 71 can slide synchronously. At the same time, under the action of the spring 74, the sliding frequency of the purification frame 71 can be increased so as to shake and flip the water purification particles inside the purification frame 71, ensuring that the purification particles in the purification frame 71 can fully contact the water and play a role in restoring water resources.

[0051] The technical scope of this invention is not limited to the content described above. Those skilled in the art can make various modifications and variations to the above embodiments without departing from the technical concept of this invention, and all such modifications and variations should fall within the protection scope of this invention.

Claims

1. An ecological water resource restoration device, comprising a floating frame (11) and two planting troughs (12) symmetrically opened on the top surface of the floating frame (11), wherein two planting frames (13) corresponding to the planting troughs (12) are symmetrically fixedly installed on the top surface of the floating frame (11), characterized in that: The inner side of the floating frame (11) is provided with a flip shell (21), and a support structure is provided between the flip shell (21) and the floating frame (11). The side of the floating frame (11) is provided with an output component, and the inner side of the flip shell (21) is provided with a pump component. A linkage component is provided between the support structure and the pump component. Two purification frames (71) are symmetrically and slidably installed on the bottom surface of the floating frame (11). A connecting plate (72) is fixedly installed between the two purification frames (71). A follow-up structure is provided between the purification frame (71) and the support structure. The output component includes a telescopic branch pipe (61) fixedly installed on the side of the flip shell (21). The telescopic end of the telescopic branch pipe (61) is provided with a rotary joint (64). The outer wall of the rotary joint (64) is provided with a number of arc-shaped pipes (65) arranged in a ring array. The telescopic branch pipe (61) is provided with an adjustment mechanism.

2. The ecological water resource restoration device according to claim 1, characterized in that: The support structure includes a sealing shell (22) fixedly installed on the inner wall of the floating frame (11), a servo motor (23) fixedly installed on the inner wall of the sealing shell (22), and a support shaft (24) coaxially arranged with the servo motor (23) between the side of the flip shell (21) and the inner wall of the floating frame (11).

3. The ecological water resource restoration device according to claim 2, characterized in that: The pump assembly includes a fixed base plate (31) fixedly installed on the inner wall of the flip shell (21). Several partition plates (32) arranged in a linear array are fixedly installed on the top surface of the fixed base plate (31). A pump chamber (33) is provided between two adjacent partition plates (32). An output pipe (34) corresponding to several pump chambers (33) is provided through the bottom surface of the fixed base plate (31). The top end of the telescopic branch pipe (61) is connected to the output pipe (34). A suction pipe (35) corresponding to several pump chambers (33) is provided through the side of the flip shell (21).

4. The ecological water resource restoration device according to claim 3, characterized in that: The support shaft (24) has a relief opening (36) corresponding to the suction tube (35).

5. The ecological water resource restoration device according to claim 3, characterized in that: The inner walls of the output pipe (34) and the suction pipe (35) are equipped with one-way valves with opposite flow directions, and the feed end of the suction pipe (35) is screwed with a filter screen.

6. The ecological water resource restoration device according to claim 3, characterized in that: The linkage assembly includes piston plates (41) slidably mounted on the inner walls of several pump chambers (33), a crankshaft (42) rotatably mounted on the inner wall of the flip shell (21) above the piston plates (41), a number of collars (43) corresponding to the piston plates (41) rotatably mounted on the outer wall of the crankshaft (42), a transmission rod (44) is hinged between the outer wall of the collars (43) and the top surface of the piston plates (41), a mounting bracket (45) is fixedly mounted on the inner wall of the flip shell (21), a driven bevel gear (46) is rotatably mounted on the inner wall of the mounting bracket (45), a drive bevel gear (47) meshing with the driven bevel gear (46) is rotatably mounted on the inner top surface of the mounting bracket (45), and the driven bevel gear (46) is connected to the crankshaft (42) by a driven wheel and a synchronous belt.

7. The ecological water resource restoration device according to claim 6, characterized in that: The linkage component also includes two one-way bearings (51) with opposite locking directions mounted on the output end of the servo motor (23). One of the one-way bearings (51) has a drive gear ring (52) mounted on its outer wall, and the outer wall of the other one-way bearing (51) is fixedly connected to the side of the flip shell (21). A support plate (53) is fixedly installed on the side of the flip shell (21). A transmission gear (54) that meshes with the drive gear ring (52) is rotatably mounted on the bottom surface of the support plate (53). The transmission gear (54) and the drive bevel gear (47) are connected by a transmission wheel and a transmission belt.

8. The ecological water resource restoration device according to claim 2, characterized in that: The adjustment mechanism includes a waterproof shell (63) fixedly installed on the outer wall of the telescopic branch pipe (61), an electric push rod (62) fixedly installed on the inner wall of the waterproof shell (63), and the telescopic end of the electric push rod (62) is fixedly connected to the telescopic end of the telescopic branch pipe (61). A paddle disc (66) is fixedly installed on the top surface of several arc-shaped pipes (65).

9. The ecological water resource restoration device according to claim 8, characterized in that: The top surface of the floating frame (11) is symmetrically fixedly equipped with two solar panels (14) corresponding to the servo motor (23), and the top surface of the floating frame (11) is symmetrically opened with two clearance openings (15) corresponding to the arc tube (65) and the propeller disk (66).

10. The ecological water resource restoration device according to claim 2, characterized in that: The follower structure includes four fixed plates (73) symmetrically fixedly installed on the bottom surface of the floating frame (11). A spring (74) is fixedly installed between the side of the fixed plate (73) and the outer wall of the purification frame (71). A fixed plate (75) is fixedly fitted on the outer wall of the support shaft (24). A number of protrusions (76) arranged in a ring array are fixedly installed on the side of the fixed plate (75). A top rod (77) corresponding to the protrusion (76) is fixedly installed on the side of one of the purification frames (71).

Citation Information

Patent Citations

  • Floating bed piece for water ecological restoration and floating bed

    CN221141469U