Solar water body circulation algae control device
By introducing adjustable linkage components and photovoltaic/wind power components into the water treatment equipment, the problem of the floating body's inability to adjust its height was solved, enabling automatic adjustment and continuous operation of water circulation, improving algae decomposition efficiency and extending the equipment's service life.
Patent Information
- Application Number
- CN202423202810.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2034-12-24
AI Technical Summary
The floating body of existing water treatment equipment is connected to the main body of the equipment by a fixed connecting rod, which cannot automatically adjust its height according to the rise and fall of the water level. This may cause the equipment to sink to the bottom of the water, affecting its effectiveness.
An adjustable linkage assembly connects the floating body and the diversion plate, which are powered by photovoltaic and wind power modules. The impeller assembly enables water circulation, and the guide pipe automatically adjusts its length through the support assembly to ensure smooth water circulation.
It enables the floating body to automatically adjust according to water level changes, enhances water circulation, improves algae decomposition efficiency, ensures continuous operation of the equipment on the water surface, and extends the service life of the guide pipe.
Smart Images

Figure CN223866473U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water treatment equipment technology, and in particular to a solar-powered water circulation algae control device. Background Technology
[0002] Water is an indispensable natural resource for human development. In rivers and lakes, excessive blue-green algae can cause water pollution, algal blooms, and foul odors. To purify the water, water circulators can be installed in rivers and lakes to increase dissolved oxygen levels and control and manage excessive blue-green algae.
[0003] In existing technologies, fixed algae removal equipment can be used to treat excessive cyanobacteria in water bodies. Patent CN206298434U discloses a multifunctional fully automatic solar water treatment device, which includes a floating body, solar photovoltaic panels, a main body, a pressure plate, a motor cover, a water sample detection device, water pipes, an aeration head, a water inlet plate, an ultrasonic probe, an impeller, a DC brushless motor, a control system, and a solar-powered battery. The motor cover is installed at the center of the main body, with the brushless motor, control system, and pressure plate installed below it. Several solar photovoltaic panels are evenly arranged around the perimeter of the motor cover. The bottom of the outer solar photovoltaic panels is connected to the floating body to support the entire device on the water surface. The control signal terminal of the DC brushless motor is connected to the control system, and its output shaft is connected to the impeller. The ultrasonic probe and water sample detection device are both installed on the main body. The water sample detection device is used to detect relevant parameters of the water sample, and its signal output terminal is connected to the signal acquisition terminal of the control system. The ultrasonic control signal output terminal of the control system is connected to the ultrasonic probe. A water pipe is installed at the bottom of the main body, with the other end of the water pipe extending into the water body and connecting to the aeration head and the water inlet plate. The disadvantage of this water treatment equipment is that the floating body is connected to the main body of the equipment by a fixed connecting rod. The floating body cannot automatically adjust its height according to the rise and fall of the water level. When the water level drops, the main body of the equipment may sink to the bottom and fail to float on the water surface, affecting its effectiveness. Utility Model Content
[0004] The purpose of this invention is to solve the problem that the floating body of existing water treatment equipment is connected to the main body of the equipment by a fixed connecting rod, and the floating body cannot automatically adjust its height according to the rise and fall of the water level, so as to provide a solar-powered water circulation algae control device.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A solar-powered water circulation algae control device includes a distribution plate, an upper support, floating bodies, an impeller assembly, a photovoltaic module, a wind power module, and a guide pipe. The upper support is fixedly connected above the distribution plate, and the guide pipe is fixedly connected below the distribution plate. The internal pipe of the guide pipe is connected to the central hole of the distribution plate. There are multiple floating bodies, each of which is connected to the outside of the distribution plate through an adjustable connecting rod assembly. The photovoltaic module and the wind power module are respectively mounted on the upper support. The impeller of the impeller assembly is mounted in the central hole of the distribution plate. The motor of the impeller assembly is fixed on the upper support and is electrically connected to the energy storage devices of the photovoltaic module and the wind power module. The output shaft of the motor is connected to the impeller through a coupling.
[0007] In the above scheme, the diversion plate includes an upper conical part, a middle cylindrical part, and a lower flange seat. The conical part and the cylindrical part are fixedly connected. An outlet is provided on the side wall of the cylindrical part, and the flange seat is fixedly connected to the lower part of the cylindrical part. With this arrangement, water drawn in from the lower end of the guide pipe flows out through the outlet of the cylindrical part, forming a longitudinal water circulation in the water body. This increases the dissolved oxygen content in the water, promotes the growth of microorganisms in the water, and thus promotes the decomposition of cyanobacteria.
[0008] In the above scheme, the guide pipe includes an upper flange seat, a lower flange seat, and a flexible hose. The upper flange seat and the lower flange seat are respectively connected to the upper and lower ends of the flexible hose. The upper flange seat is used to connect to the flange seat on the distribution plate. With this configuration, the guide pipe can be firmly fixed on the distribution plate, and its length will automatically adjust according to the water level, ensuring that the water in the body can rise through the guide pipe to the distribution plate and then be output through the outlet on the distribution plate.
[0009] In the above scheme, a support assembly is connected below the lower flange seat, and the support assembly is fixedly connected to the lower flange seat. By setting the support assembly, a certain distance is maintained between the water inlet at the lower end of the guide pipe and the riverbed, ensuring unobstructed flow at the water inlet at the lower end of the guide pipe. The specific structure of the support assembly can be selected according to needs. For example, it can be selected as several support feet, or a support plate can be used, with the support plate connected to the lower flange seat by multiple connecting rods.
[0010] In the above scheme, the flange seat of the diversion plate is fixedly connected to the upper support via a connecting frame, the position of which corresponds to the position of each floating body. The structure of the connecting frame can be designed as needed, and by setting the connecting frame, the stability of the connection between the upper support and the diversion plate can be ensured.
[0011] In the above scheme, the adjustable linkage assembly includes a connecting arm and a buffer cylinder. The connecting arm is movably connected to the flange seat on the diversion plate, and the end of the connecting arm is connected to the float. The upper end of the buffer cylinder is movably connected to the upper support, and the lower end of the buffer cylinder is movably connected to the middle of the connecting arm. With this configuration, the movable connection between the connecting arm and the flange seat on the diversion plate allows for automatic adjustment of the angle between the connecting arm and the diversion plate according to the water level and the gravity of the float and the connecting arm. The buffer cylinder ensures smoother raising and lowering of the connecting arm and prevents violent movement of the connecting arm in strong winds.
[0012] In the above design, the lower end of the floating body is connected to the connecting arm via a connecting chain. This configuration allows the floating body to have a greater range of movement and higher degree of freedom on the water surface.
[0013] In the above scheme, the lower flange seat and the connecting frame are connected by a connecting chain. This arrangement allows the connecting chain to provide tension to the lower flange seat, ensuring that the weight of the lower flange seat primarily acts on the connecting chain. This eliminates the tension of the lower flange seat on the hose, preventing damage to the hose and extending its service life.
[0014] In the above scheme, the floating body is connected to an anchor block. By setting the anchor block, the floating range of the solar-powered water circulation algae control device on the water surface can be limited.
[0015] This invention has the following positive effects: 1) The solar-powered water circulation algae control device of this invention has a floating body connected to the outside of the diversion plate via an adjustable connecting rod assembly. According to changes in the water level, the adjustable connecting rod assembly can automatically rise and fall under gravity, adjusting the angle between the connecting arm and the diversion plate to improve the water circulation effect. 2) This solar-powered water circulation algae control device of this invention can utilize photovoltaic or wind power modules to provide electricity, enabling continuous algae control operations in the water body and enhancing the algae control effect. 3) This solar-powered water circulation algae control device of this invention can use an impeller to pump water from the lower layer of the water body to the diversion plate through a guide pipe, and then output it from the outlet of the diversion plate, achieving both longitudinal and lateral circulation of the water body. This increases the oxygen content in the water body and improves the decomposition efficiency of algae. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of the solar-powered water circulation algae control device of this utility model.
[0017] Figure 2 A schematic diagram of the structure of this utility model's solar-powered water circulation algae control device (the guide pipe is not shown).
[0018] Figure 3 This is a schematic diagram of the connection structure between the diversion plate, the upper support, and the floating body.
[0019] Figure 4 This is a schematic diagram of the connection structure of the guide tube and support components.
[0020] The reference numerals in the figure are as follows: 1. Diverter plate; 11. Conical part; 12. Cylindrical part; 13. Flange seat; 14. Outlet; 2. Upper support; 3. Floating body; 31. Connecting arm; 32. Buffer cylinder; 33. Connecting chain; 4. Impeller assembly; 41. Impeller; 42. Motor; 43. Output shaft; 5. Photovoltaic module; 51. Connecting seat; 6. Guide pipe; 61. Upper flange seat; 62. Lower flange seat; 63. Hose; 64. Support assembly; 65. Connecting chain; 7. Connecting frame; 71. First support rod; 72. Second support rod; 73. Third support rod; 74. Fourth support rod; 75. Horizontal rod; 76. Inclined support rod; 8. Wind power module. Detailed Implementation
[0021] The technical solution of this utility model will be clearly and completely described below through embodiments. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0022] like Figure 1-4 As shown, the solar-powered water circulation algae control device of this utility model includes a diversion plate 1, an upper support 2, a floating body 3, an impeller assembly 4, a photovoltaic module 5, a wind power module 8, and a guide pipe 6.
[0023] like Figure 1-3 As shown, the shape and structure of the diversion plate 1 can be designed according to styling requirements; for example, it can be designed as an attachment. Figure 1 The structure shown is as follows. Figure 1 As shown, the diverter plate 1 includes an upper conical portion 11, a middle cylindrical portion 12, and a lower flange seat 13. The conical portion 11 is fixedly connected to the cylindrical portion 12, and the flange seat 13 is fixedly connected to the lower part of the cylindrical portion 12. Multiple water outlets 14 are provided on the side wall of the cylindrical portion 12, and the water outlets 14 are evenly distributed along the side wall of the cylindrical portion 12. The arrangement of the water outlets 14 can be designed according to needs. For example, an opening can be directly formed on the side wall of the cylindrical portion 12 to form a water outlet, or the cylindrical portion 12 and the conical portion 11 can be connected by multiple connecting rods, with the water outlets formed in the spaces between the connecting rods.
[0024] like Figure 1-3 As shown, the shape and structure of the upper support 2 can be designed according to styling requirements; for example, it can be designed as an attachment. Figure 1 The structure shown is as follows. Figure 1As shown, the upper support 2 has a triangular structure, with all three sides being arc-shaped. The upper support 2 is fixedly connected to the distribution plate 1 via a connecting bracket 7.
[0025] like Figure 1-3 As shown, the structure of the connecting frame 7 can be designed according to needs, and can be designed as an attachment. Figure 1 The structure shown is as follows. Figure 1 As shown, the connecting frame 7 includes a first support rod 71, a second support rod 72, a third support rod 73, and a fourth support rod 74. The first support rod 71 is fixedly connected to the outer wall of the conical portion 11 of the distribution plate 1; the second support rod 72 is fixedly connected to the outer wall of the cylindrical portion 12; the third support rod 73 is fixedly connected to the upper surface of the flange seat 13; the lower end of the fourth support rod 74 is fixedly connected to the third support rod 73; the end of the first support rod 71 is fixedly connected to the fourth support rod 74; and the upper end of the fourth support rod 74 is fixedly connected to the upper bracket 2. To strengthen the connection between the connecting frame 7 and the upper bracket 2, a horizontal rod 75 is also fixedly connected to the bottom of the upper bracket 2. The end of the horizontal rod 75 is fixedly connected to the fourth support rod 74, and an inclined support rod 76 is provided between the horizontal rod 75 and the fourth support rod 74.
[0026] like Figure 1-3 As shown, the aforementioned connecting frame 7 is provided in three sets, and the three sets of connecting frames 7 are respectively set at the three corners corresponding to the upper support 2.
[0027] like Figure 4 As shown, the guide pipe 6 includes an upper flange seat 61, a lower flange seat 62, and a flexible hose 63. The internal pipe of the guide pipe 6 is connected to the central hole of the distribution plate 1. The upper flange seat 61 and the lower flange seat 62 are respectively connected to the upper and lower ends of the flexible hose 63. The upper flange seat 61 is fixedly connected to the flange seat 13 on the distribution plate 1. The flexible hose 63 can be made of thermoplastic rubber, making it a telescopic hose. A support assembly 64 is connected below the lower flange seat 62 and is fixedly connected to the lower flange seat 62. By setting the support assembly 64, the water inlet at the lower end of the guide pipe 6 is kept at a certain distance from the riverbed, ensuring unobstructed flow at the water inlet at the lower end of the guide pipe 6. The specific structure of the support assembly 64 can be selected as needed; for example, it can be selected as several support feet or a support plate. The support plate is connected to the lower flange seat 62 by multiple connecting rods.
[0028] The lower flange seat 62 is connected to the connecting bracket 2 via a connecting chain 65. With this arrangement, the connecting chain 65 can provide tension to the lower flange seat 62, so that the weight of the lower flange seat 62 mainly acts on the connecting chain 65, eliminating the tension of the lower flange seat 62 on the hose 63, preventing damage to the hose 63, and extending its service life.
[0029] There are multiple floating bodies 3, and each floating body 3 is connected to the outside of the diversion plate 1 through an adjustable connecting rod assembly.
[0030] Multiple floating bodies 3 can be provided, for example, they can be arranged according to the attached... Figure 1 As shown, three floating bodies 3 are set. The material, shape and structure of the floating bodies 3 can be set as needed. For example, the shell of the floating body 3 can be made of high-density polyethylene material and filled with foam material inside. By designing the volume and shape of the floating body 3, the floating body 3 can provide sufficient buoyancy to ensure that the solar water circulation algae control device can float on the water surface.
[0031] To increase the number of photovoltaic panels, photovoltaic panels can also be installed on the top of the floating body 3, and the photovoltaic panels are electrically connected to the energy storage device of the photovoltaic module 5 on the upper support 2.
[0032] The adjustable linkage assembly includes a connecting arm 31 and a buffer cylinder 32. The connecting arm 31 is movably connected to the flange seat 13 on the diversion plate 1, and its end is connected to the float 3. The upper end of the buffer cylinder 32 is movably connected to the connecting frame 2, and its lower end is movably connected to the middle of the connecting arm 31. With this configuration, the connecting arm 31, movably connected to the flange seat 13 on the diversion plate 1, can automatically adjust the angle between the connecting arm 31 and the diversion plate 1 according to the water level and under the gravity of the float 3 and the connecting arm 31. The buffer cylinder 32 ensures smoother lifting and lowering of the connecting arm 31 and prevents violent movement of the connecting arm 31 in strong winds.
[0033] In the above scheme, the lower end of the floating body 3 is connected to the connecting arm 31 via a connecting chain 33. This arrangement allows the floating body 3 to have a larger range of movement and greater freedom of movement on the water surface.
[0034] To limit the floating range of the solar-powered algae control device on the water surface, anchor blocks can be connected to the floating body via connecting chains. The shell of the anchor block can be made of high-density polyethylene and filled with concrete. The weight of each anchor block can be designed as needed, for example, 35-45 kg.
[0035] The connecting chains mentioned above are preferably made of corrosion-resistant materials, such as stainless steel chains. The length of the connecting chain can be designed as needed, thereby controlling the floating range of the float in the water.
[0036] Photovoltaic module 5 and wind power module 8 are respectively mounted on the upper support 2. Both photovoltaic module 5 and wind power module 2 can use existing photovoltaic modules and wind power modules. The photovoltaic panel of photovoltaic module 5 can be fixedly connected to the adjacent top corners of the upper support 2 through the connecting seat 51, which can be fixedly connected to the upper support 2.
[0037] The impeller 41 of the impeller assembly 4 is installed in the center hole of the distribution plate 1. The motor 42 of the impeller assembly 4 is fixed on the upper bracket 2. The motor is electrically connected to the energy storage device of the photovoltaic module 5 and the wind energy module 8. The output shaft 43 of the motor 42 is connected to the impeller 41 through a coupling.
[0038] To ensure sufficient power for the solar-powered water circulation algae control device, a wind power unit 8 is installed on the upper support 2. By installing the wind power unit 8, natural wind on the water surface can be used to generate electricity, thus ensuring that the water circulation device has sufficient power.
[0039] This utility model of a solar-powered water circulation algae control device is used by placing it in water. Under the action of the floating body, the diverter and the part above the diverter can float on the water surface. It uses solar or wind energy to convert into electrical energy and stores it in an energy storage device, enabling the solar-powered water circulation algae control device to continuously carry out algae control operations in the water body and enhance the algae control effect. The electrical energy is used to drive the motor of the impeller assembly to rotate, creating a negative pressure in the guide pipe, which allows the water in the middle and lower layers of the water body to be lifted through the guide pipe to the diverter plate and sprayed out through the outlet on the diverter plate, realizing the vertical and horizontal circulation of water in the water body, thereby increasing the oxygen content in the water body and improving the decomposition efficiency of algae in the water body. When the water level rises, the buoyant body causes the diverter and the portion above it to float on the surface. The guide pipe, under the weight of its supporting assembly at the lower end, extends, and the supporting assembly rests on the riverbed. If the water depth is greater than the guide pipe's depth, the supporting assembly will not contact the bottom, and the guide pipe will be fully extended. The weight of the supporting assembly and lower flange is borne by the connecting chain, preventing damage to the guide pipe and ensuring its lifespan. The supporting assembly ensures sufficient distance between the guide pipe's inlet and the riverbed, guaranteeing unobstructed flow at the inlet. Conversely, when the water level drops, the entire solar-powered water circulation algae control system descends. At lower water levels, the supporting assembly contacts the riverbed, and simultaneously, the guide pipe automatically contracts under elasticity, ensuring unobstructed flow at the inlet. This utility model relates to a solar-powered water circulation algae control device. A floating body is connected to the outside of a distribution plate via an adjustable connecting rod assembly. When the water level changes, the floating body moves downwards relative to the distribution plate when the water level drops, remaining afloat on the water surface. This reduces the drop height of the distribution fluid, decreases the contraction length of the guide pipe, prevents the guide pipe from sinking into sludge, and makes water circulation smoother. Conversely, when the water level rises, the floating body moves upwards relative to the distribution plate, reducing the rise height of the distribution fluid, decreasing the extension length of the guide pipe, and placing the inlet at the lower end of the guide pipe deep within the water, thus enhancing water circulation, increasing oxygen content, and improving algae control.
[0040] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A solar-powered water circulation algae control device, characterized in that, It includes a distribution plate, an upper support, floating bodies, an impeller assembly, photovoltaic modules, wind power modules, and a guide pipe. The upper support is fixedly connected above the distribution plate, and the guide pipe is fixedly connected below the distribution plate. The internal pipe of the guide pipe is connected to the central hole of the distribution plate. There are multiple floating bodies, each of which is connected to the outside of the distribution plate through an adjustable connecting rod assembly. The photovoltaic modules and wind power modules are respectively mounted on the upper support. The impeller of the impeller assembly is mounted in the central hole of the distribution plate. The motor of the impeller assembly is fixed on the upper support. The motor is electrically connected to the energy storage devices of the photovoltaic modules and wind power modules. The output shaft of the motor is connected to the impeller through a coupling.
2. The solar-powered water circulation algae control device according to claim 1, characterized in that: The diverter plate includes a conical part at the upper end, a cylindrical part in the middle, and a flange seat at the lower end. The conical part and the cylindrical part are fixedly connected. An outlet is provided on the side wall of the cylindrical part, and the flange seat is fixedly connected to the lower part of the cylindrical part.
3. The solar-powered water circulation algae control device according to claim 2, characterized in that: The guide pipe includes an upper flange seat, a lower flange seat, and a hose. The upper flange seat and the lower flange seat are respectively connected to the upper end and the lower end of the hose. The upper flange seat is used to connect to the flange seat on the distributor plate.
4. The solar-powered water circulation algae control device according to claim 3, characterized in that: A support assembly is connected to the lower flange seat, and the support assembly is fixedly connected to the lower flange seat.
5. The solar-powered water circulation algae control device according to claim 3, characterized in that: The flange seat of the diversion plate is fixedly connected to the upper support via a connecting frame, the position of which corresponds to the position of each floating body.
6. The solar-powered water circulation algae control device according to claim 5, characterized in that: The lower flange seat and the connecting frame are connected by a connecting chain.
7. The solar-powered water circulation algae control device according to claim 1, characterized in that: The adjustable linkage assembly includes a connecting arm and a buffer cylinder. The connecting arm is movably connected to the flange seat on the diverter plate, the end of the connecting arm is connected to the float, the upper end of the buffer cylinder is movably connected to the upper support, and the lower end of the buffer cylinder is movably connected to the middle of the connecting arm.
8. The solar-powered water circulation algae control device according to claim 7, characterized in that: The lower end of the floating body is connected to the connecting arm via a connecting chain.
9. The solar-powered water circulation algae control device according to claim 1, characterized in that: Anchor blocks are attached to the floating body.
Citation Information
Patent Citations
Multi -functional full -automatic solar energy water treatment facilities
CN206298434U