Floating type pollution and carbon reduction water purification device and construction method thereof
By introducing a stable floating component and a drive component into the floating water purification device, and using an arc-shaped support and floating airbag to enhance stability, combined with the stability and mobility control of the power motor and propeller blades, the problem of device tipping over is solved, and energy saving and consumption reduction are achieved.
Patent Information
- Application Number
- CN202510987890.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-17
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2045-07-17
AI Technical Summary
The existing floating pollution reduction and water purification devices have the same bottom floating structure and top support structure area, resulting in poor stability and easy to tip over under the action of lateral wind or waves.
It adopts a combination of stable floating components and drive components, providing all-round support through eight sets of arc-shaped brackets and floating airbags. The power motor drives the rotating shaft and propeller blades to control the stability and mobility of the device, and reduces energy consumption through energy-saving components.
This improved the stability and anti-tipping ability of the device, while reducing energy consumption and the workload of manually cleaning photovoltaic panels, thus achieving energy-saving effects.
Smart Images

Figure CN120794056B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of pollution reduction and water purification technology, specifically a floating pollution reduction and carbon reduction water purification device and its construction method. Background Technology
[0002] Various water pools encountered in production and daily life often suffer from water pollution due to various factors. In order to reduce pollution in water pools, it is usually necessary to use spraying devices to spray specific solutions to settle and treat impurities in the water pool. In order to better reduce costs and save energy, a floating structure is usually adopted, which is placed directly on the water pool to provide support for the spraying device in a floating manner, thereby ensuring that the device can carry out wastewater treatment normally. In addition, the photovoltaic panel structure on the top can effectively achieve the effect of reducing carbon emissions and energy consumption.
[0003] For example, invention publication number CN208120828U discloses a floating water purification device for aquaculture, including an upper frame, a cross-grooved screw, a first fixing rod, a buoyancy component, an emergent plant fixing clip, a lower frame, and water purification filler. The upper frame has an emergent plant fixing port, and fixing connection ports are provided on both sides of the emergent plant fixing port. The cross-grooved screw is installed inside the fixing connection port. The first fixing rod is fixed inside the upper frame, and second fixing rods are provided on both sides of the first fixing rod. The emergent plant fixing clip is installed inside the emergent plant fixing port, and the water purification filler is installed inside the lower frame. This floating water purification device for aquaculture, with its first and second fixing rods, reinforces the water pipe, preventing it from detaching from the device even when it collides with water. This makes the device more practical and convenient to use.
[0004] In existing floating pollution reduction and water purification devices, the floating structure at the bottom and the supporting structure at the top have the same area, resulting in poor stability of the floating structure. Furthermore, when there are lateral winds or waves, the center of gravity of the floating structure will shift, leading to the problem of tipping over.
[0005] Therefore, a floating pollution reduction and carbon reduction water purification device and its construction method are proposed to solve the problems raised in the background technology. Summary of the Invention
[0006] To address the problems mentioned in the background art, the present invention provides a floating pollution reduction and carbon reduction water purification device and its construction method.
[0007] To achieve the above objectives, the present invention provides the following technical solution: a floating pollution reduction and carbon reduction water purification device, comprising a support plate, eight sets of stable floating components are arranged on the outer side of the support plate, and the floating components are used to achieve the effect of stable floating; drive components are fixedly installed on the outer side of the four corners of the support plate, and the drive components are used to control the movement of the device while improving stability; and energy-saving components are arranged above the support plate, and the energy-saving components are used to reduce energy consumption.
[0008] The stable floating component includes a fixed sleeve, and eight sets of arc-shaped brackets are welded and installed on the outer side of the lower end of the fixed sleeve. A fixed ring is welded and installed at the bottom of the arc-shaped bracket. A floating airbag is provided on the inner side of the arc-shaped bracket, and several sets of fixing straps are fixedly installed on the outer side of the floating airbag. The fixing straps contact and bind to the outer side of the fixing ring. An inflation end is fixedly installed on the top of the floating airbag, and the inflation end is movably located on the inner side of the fixed sleeve. A fixed bearing is fixedly installed on the outer side of the fixed sleeve.
[0009] The drive assembly includes a power motor, and a rotating shaft is movably provided at the output end of the power motor. Propeller blades are welded and installed on the surface of the rotating shaft, and a vertical tube is separately provided on the outer side of the propeller blades. An opening is provided on the upper end of the vertical tube away from the support plate.
[0010] The energy-saving component includes a pump-driven box, and three cams are movably arranged inside the pump-driven box. Four sets of transmission pipes are fixedly installed on the right side of the pump-driven box. A set of flexible hoses is installed inside two sets of transmission pipes through a fixed connecting ring, and the flexible hoses are located between the three cams and the pump-driven box.
[0011] Preferably, right-angle brackets are installed at the four corners of the support plate, and several sets of welded corner seats are welded between the right-angle brackets and the support plate. Four sets of limiting blocks are fixedly installed on the top of the support plate, and a water tank is fixedly installed on the inner side of the limiting blocks by bolts. The water tank contacts the top of the support plate, and a controller is fixedly installed on the top of the front of the water tank by bolts.
[0012] Preferably, the controller has control buttons embedded on its front, a display screen mounted on its top, and a gyroscope sensor installed inside.
[0013] Preferably, a support column is fixedly installed at three-quarters of the way up from the bottom of the arc-shaped bracket, and a gear ring is welded to the top of the support column. Limiting rings are installed on the inner and outer rings of the gear ring, and a fixed bearing is fixedly installed on the outer side of the fixed sleeve.
[0014] Preferably, an inflation tube is installed on the top of the inflation end, and fixing blocks are fixedly installed on both sides of the upper end of the inflation end. The fixing blocks are fixed to the top of the fixing sleeve by bolt structure. An annular water pipe is provided on the inner side of the fixing strap, and several sets of spray heads are installed at the bottom of the annular water pipe.
[0015] Preferably, two sets of fixing rods are welded and installed on one side of the fixed bearing, and an arc-shaped slider is welded and installed at the end of the fixing rod. The arc-shaped slider slides on the outside of the gear ring, and an arc-shaped groove is opened on the inner side of the arc-shaped slider. The arc-shaped groove matches the cross-sectional shape of the gear ring and the limiting ring. An adjusting motor is bolted to the upper end of the arc-shaped slider near the right side of the fixed bearing, and the output of the adjusting motor is provided with a drive gear. The drive gear is meshed on the top of the gear ring. A fixing bracket is welded and installed at the other end of the fixed bearing, and the inner side of the end of the fixing bracket is fixed to the telescopic push rod through a connecting shaft frame. The upper end of the telescopic push rod is fixed to the fixing plate through a connecting shaft frame, and a photovoltaic panel is bolted to the top of the fixing plate.
[0016] Preferably, the lower end of the photovoltaic panel is fixedly connected to the arc-shaped slider via a connecting shaft frame, and an inverter is fixed to the lower part of the photovoltaic panel via bolts. A fixed water pipe is fixedly installed in the upper part of the photovoltaic panel, and several sets of cleaning nozzles are installed at the bottom of the fixed water pipe. A light sensor is embedded in the surface of the photovoltaic panel.
[0017] Preferably, a drive shaft is mounted in the middle of the three cams, and a drive motor is provided at the input end of the drive shaft. The drive motor is fixedly connected to the top of the pump box by bolts. One set of the inlet end of the transmission pipe is inserted into the water tank, and the other set is inserted into the water surface with a built-in filter at the end. A diverter is fixedly installed at the outlet end of the transmission pipe, and eight connection ports are installed on the top of the diverter.
[0018] Preferably, a welding block is welded to the top of the vertical pipe, and the welding block is welded to the inside of the right-angle bracket. A power motor is fixedly installed on the top of the welding block by bolts, and the output end of the power motor is connected to the rotating shaft.
[0019] A preferred method for constructing a floating pollution reduction and carbon reduction water purification device:
[0020] S1. First, connect the eight sets of connection ports connected to the water tank to the eight sets of ring water pipes through water pipes to ensure that the water flow can enter the transmission pipe through the water tank, and then be discharged through the hose by the distributor. Then, connect the eight sets of connection ports connected to the water surface to the interface at one end of the fixed water pipe through water pipes to ensure that the water flow can be normal. Then, connect each set of regulating motors, drive motors, telescopic push rods, inverters and power motors to the waterproof interface of the controller.
[0021] S2. Then, the uninflated floating airbag is inserted through the middle of the fixed sleeve and placed at the bottom of the arc-shaped bracket. Then, the fixed block and the fixed sleeve are fixedly connected by bolts. Then, each set of fixing straps is tied to the outside of the ring water pipe and the fixed ring. Then, the external inflation device is connected to the inflation pipe. After connection, the inside of the floating airbag is inflated. The inflated floating airbag will be tightly attached to the inner wall of the arc-shaped bracket.
[0022] S3. Next, connect the lower end and bottom of the photovoltaic panel to the arc-shaped slider and the fixed plate through the connecting shaft frame. After connection, according to the controller settings, use the light sensor to detect the area of light, and then control the drive gear to rotate by adjusting the motor. During the rotation, the arc-shaped slider will be engaged and slide along the limit ring to adjust the direction. Then, control the piston rod at the output end to extend and retract by the telescopic push rod, thereby driving the photovoltaic panel to adjust along the connecting shaft frame, thereby changing the angle of the photovoltaic panel.
[0023] S4. Then, the drive motor drives the drive shaft to rotate. When rotating, the three cams will rotate and squeeze the internal hose. During the squeezing process, the liquid inside the hose will be pushed to flow to one end of the distributor. Continuous rotation will generate suction, thereby drawing out the water from the water tank and the water surface, and then diverting it through the distributor. Then, it is injected into the interior of the annular water pipe through the water pipe. The spray head at the bottom sprays out the internal agent to reduce water pool pollution. Another set guides the pool water into the filter and then injects it into the interior of the fixed water pipe through the water pipe. Finally, the cleaning nozzle sprays out to rinse the surface of the photovoltaic panel.
[0024] S5. Finally, the controller controls the operation of each set of power motors. During the rotation, the rotating shaft will drive the propeller blades to rotate. The internal structure is rotated to control the rise or fall of the liquid. When the liquid rises inside, it will be discharged through the opening. The discharge will provide a certain degree of thrust. The magnitude of the thrust will be controlled by the rotation speed. The movement of the entire device is controlled in this way.
[0025] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0026] This invention utilizes a combination of stable floating components and a support plate. The support plate is welded to the arc-shaped support using a right-angle bracket. Eight arc-shaped supports are arranged in a group to form a semi-circular cover. Removable floating airbags are installed at the bottom. By inflating them, they can be confined to the inside of the arc-shaped support, allowing them to contact the water surface and provide support above. The eight groups of floating airbags can increase the area of the floating structure from all directions, keeping the support structure in the central area, which can greatly improve the stability of the overall device. Even in special circumstances, it can still maintain a stable floating effect.
[0027] This invention achieves the movement of the driving device by setting up a coordinated drive component structure. While the floating structure can increase the stability of the floating device when a stable floating component is set up, the buoyancy effect will decrease when a single component is damaged, and swaying will still occur. By fixing the vertical tube and the welded block by welding, stability can be maintained at the same time, and the power motor can drive the rotating shaft to rotate. During the rotation, the propeller blades can drive the internal liquid to rise or fall. The opening at the top can assist the water flow to enter or exit. When a set of floating airbags is damaged, the gyroscope sensor inside the controller will detect the angle. Based on the detected tilt angle, the power motor at the corresponding position will drive the propeller blade to rotate. During the rotation, water flow is kept entering through the opening and exiting from the bottom of the vertical tube, thereby providing an upward pushing force to counteract the downward force. When water enters through the opening, it will provide a certain degree of pulling force in the direction of the opening, thereby achieving the effect of moving the device and further maintaining a stable floating state in special circumstances.
[0028] This invention, through the combination of energy-saving components and a diverter, achieves energy-saving effects by further reducing costs on the basis of carbon reduction. Existing photovoltaic panels are prone to surface dust accumulation after long-term use, which affects the photoelectric conversion efficiency. By incorporating a pump-driven box, the internal structure is constrained. A drive motor rotates three cams inside the pump-driven box. During rotation, the liquid inside the hose is pushed and transported by compression. By fixing the pump-driven box, the liquid inside two sets of hoses can be moved simultaneously, thereby reducing costs. Furthermore, water is drawn from the pool through a transmission pipe, and the liquid is introduced into the fixed water pipe by the diverter and water pipe. The liquid is then sprayed out through the cleaning nozzle to rinse the surface of the photovoltaic panels, thereby reducing the workload of workers cleaning the photovoltaic panels and achieving energy-saving effects. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0030] Figure 2 This is a schematic diagram of the top of the entire invention;
[0031] Figure 3 This is a schematic diagram of the floating airbag structure of the present invention;
[0032] Figure 4 This is a schematic diagram of the photovoltaic panel structure of the present invention;
[0033] Figure 5 This is a schematic diagram of the cross-section of the telescopic push rod of the present invention;
[0034] Figure 6 This is a schematic diagram of the pump housing structure of the present invention;
[0035] Figure 7 This is a schematic diagram of the vertical tube structure of the present invention;
[0036] Figure 8 This is a schematic cross-sectional view of the pump housing of the present invention;
[0037] Figure 9 This is a schematic diagram of the vertical tube cross-section of the present invention.
[0038] In the diagram: 1. Support plate; 101. Welded corner bracket; 102. Right-angle bracket; 103. Limiting block; 104. Water tank; 2. Controller; 201. Control button; 202. Display screen; 3. Arc-shaped bracket; 301. Fixing sleeve; 302. Fixing ring; 303. Support column; 304. Gear ring; 305. Limiting ring; 4. Floating airbag; 401. Inflation end; 402. Fixing block; 403. Inflation pipe; 404. Fixing strap; 405. Annular water pipe; 406. Spray head; 5. Telescopic push rod; 501. Fixed bearing; 502. Fixing rod; 503. 504. Arc-shaped slider; 505. Arc-shaped slide groove; 506. Fixed bracket; 507. Connecting shaft bracket; 508. Fixed plate; 509. Adjusting motor; 6. Photovoltaic panel; 601. Inverter; 602. Fixed water pipe; 603. Cleaning nozzle; 7. Hose; 701. Pump-driven box; 702. Drive motor; 703. Drive shaft; 704. Triple cam; 705. Connecting ring; 706. Transmission pipe; 707. Diverter; 708. Connection port; 8. Propeller blade; 801. Welding block; 802. Power motor; 803. Rotating shaft; 804. Vertical pipe; 805. Opening. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] like Figures 1 to 7 The present invention provides a floating pollution reduction and carbon reduction water purification device, including a support plate 1. Eight sets of stable floating components are arranged on the outer side of the support plate 1, and the floating components are used to achieve the effect of stable floating. Drive components are fixedly installed on the outer side of the four corners of the support plate 1, and the drive components are used to control the movement of the device and improve stability. An energy-saving component is arranged on the top of the support plate 1, and the energy-saving component is used to reduce energy consumption.
[0041] The stable floating component includes a fixed sleeve 301, and eight sets of arc-shaped brackets 3 are welded and installed on the outer side of the lower end of the fixed sleeve 301. A fixed ring 302 is welded and installed at the bottom of the arc-shaped brackets 3. A floating airbag 4 is provided on the inner side of the arc-shaped brackets 3. Several sets of fixing straps 404 are fixedly installed on the outer side of the floating airbag 4. The fixing straps 404 contact and bind to the outer side of the fixing ring 302. An inflation end 401 is fixedly installed on the top of the floating airbag 4. The inflation end 401 is movably located on the inner side of the fixed sleeve 301. A fixed bearing 501 is fixedly installed on the outer side of the fixed sleeve 301.
[0042] The drive assembly includes a power motor 802, and a rotating shaft 803 is movably provided at the output end of the power motor 802. A propeller blade 8 is welded and installed on the surface of the rotating shaft 803, and a vertical tube 804 is separately provided on the outer side of the propeller blade 8. An opening 805 is provided on the upper end of the vertical tube 804 away from the support plate 1.
[0043] The energy-saving component includes a pump-driven box 701, and a three-cam 704 is movably arranged inside the pump-driven box 701. Four sets of transmission pipes 706 are fixedly installed on the right side of the pump-driven box 701. A set of hoses 7 are installed inside two sets of transmission pipes 706 through a fixed connecting ring 705, and the hoses 7 are located between the three-cam 704 and the pump-driven box 701.
[0044] The above solution involves welding the bearing plate 1 to the arc-shaped support 3 using a right-angle bracket 102. Eight arc-shaped supports 3 form a semi-circular cover. Removable floating airbags 4 are installed at the bottom; these airbags, when inflated, confine the airbags to the inside of the arc-shaped support 3, allowing them to contact the water surface and provide support above. The eight floating airbags 4 increase the area of the floating structure from all directions, keeping the support structure in the central region and greatly improving the overall stability of the device. Even in special circumstances, stable floating can be maintained. While the floating structure increases stability with the stable floating components, a single rupture can reduce buoyancy and cause swaying. By welding the vertical pipe 804 to the welding block 801, stability is maintained. The power motor 802 drives the rotating shaft 803 to rotate. During rotation, the propeller blades 8 move the internal liquid up or down. The opening 805 at the top assists in water flow in and out. When one set of floating airbags 4 ruptures, the control... The gyroscope sensor inside the controller 2 detects the angle, and based on the detected tilt angle, controls the corresponding motor 802 to drive the propeller blades 8 to rotate. During rotation, water flows in through the opening 805 and out from the bottom of the vertical pipe 804, providing an upward pushing force to counteract the downward force. Furthermore, water entering through the opening 805 provides a certain degree of pulling force in the direction of the opening 805, thus achieving the effect of moving the device. This further maintains a stable floating state under special circumstances. The pump-driven box 701 provides constraint on the internal structure. The drive motor 702 drives the three cams 704 inside the pump box 701 to rotate. When rotating, the liquid inside the hose 7 is pushed and transported by squeezing. By fixing it, the liquid inside two sets of hoses 7 can be moved at the same time, thereby reducing costs. Water is drawn out of the pool through the transmission pipe 706, and the liquid is introduced into the fixed water pipe 602 by the distributor 707 and the water pipe. It is then sprayed out through the cleaning nozzle 603 to wash the surface of the photovoltaic panel 6, thereby reducing the workload of the staff in cleaning the photovoltaic panel 6 and achieving energy saving.
[0045] like Figures 1 to 3 As shown, right-angle brackets 102 are installed at the four corners of the support plate 1, and several sets of welded corner seats 101 are welded between the right-angle brackets 102 and the support plate 1. Four sets of limiting blocks 103 are fixedly installed on the top of the support plate 1, and a water tank 104 is fixedly installed on the inner side of the limiting blocks 103 by bolts. The water tank 104 contacts the top of the support plate 1, and a controller 2 is fixedly installed on the top of the front of the water tank 104 by bolts.
[0046] The controller 2 has a control button 201 embedded on its front, a display screen 202 mounted on its top, and a gyroscope sensor installed inside its interior.
[0047] A support column 303 is fixedly installed at three-quarters of the way up from the bottom of the arc-shaped bracket 3, and a gear ring 304 is welded to the top of the support column 303. Limiting rings 305 are installed on the inner and outer rings of the gear ring 304, and a fixed bearing 501 is fixedly installed on the outer side of the fixed sleeve 301.
[0048] An inflation tube 403 is installed on the top of the inflation end 401, and fixing blocks 402 are fixedly installed on both sides of the upper end of the inflation end 401. The fixing blocks 402 are fixed to the top of the fixing sleeve 301 by bolt structure. An annular water pipe 405 is provided on the inner side of the fixing strap 404, and several sets of spray heads 406 are installed at the bottom of the annular water pipe 405.
[0049] The above scheme is adopted: the right-angle bracket 102 stably connects the bearing plate 1 and the arc-shaped bracket 3 by welding, and then the welding corner seat 101 is used to increase the stability of the welding and ensure the strength of the connection area. The water tank 104 is fixed to the bearing plate 1 by the cooperation of the limit block 103 and the bolt, thereby preventing the water tank 104 from moving on the bearing plate 1. The entire device can be controlled by the controller 2, which is a PLC control device that can control multiple motor structures. It also has a built-in gyroscope sensor for level detection and can be remotely controlled and adjusted by the internal network connection structure. The control button 201 can control and adjust the device, and the display screen 202 can display the specific data information.
[0050] like Figure 4 and 5 As shown, two sets of fixing rods 502 are welded and installed on one side of the fixed bearing 501, and an arc-shaped slider 503 is welded and installed at the end of the fixing rod 502. The arc-shaped slider 503 slides on the outside of the gear ring 304, and an arc-shaped groove 504 is opened on the inner side of the arc-shaped slider 503. The arc-shaped groove 504 matches the cross-sectional shape of the gear ring 304 and the limiting ring 305. An adjusting motor 508 is bolted to the right side of the upper end of the arc-shaped slider 503 near the fixed bearing 501, and the output of the adjusting motor 508 is provided with a drive gear. The drive gear is meshed on the top of the gear ring 304. A fixing bracket 505 is welded and installed on the other end of the fixed bearing 501, and the inner side of the end of the fixing bracket 505 is fixed to the telescopic push rod 5 through the connecting shaft bracket 506. The upper end of the telescopic push rod 5 is fixed to the fixing plate 507 through the connecting shaft bracket 506, and a photovoltaic panel 6 is bolted to the top of the fixing plate 507.
[0051] The lower end of the photovoltaic panel 6 is fixedly connected to the arc-shaped slider 503 via a connecting shaft bracket 506, and an inverter 601 is fixed to the bottom of the photovoltaic panel 6 with bolts. A fixed water pipe 602 is fixedly installed in the upper area of the photovoltaic panel 6, and several sets of cleaning nozzles 603 are installed at the bottom of the fixed water pipe 602. A light sensor is embedded in the surface of the photovoltaic panel 6.
[0052] The above scheme is adopted: the fixed rod 502 connects the fixed bearing 501 and the arc-shaped slider 503 by welding, which can effectively maintain stability. The arc-shaped slider 503 can slide stably along the limiting ring 305. The set adjustment motor 508 can be energized to drive the drive gear at the output end to rotate. When rotating, the gear meshing will drive the arc-shaped slider 503 to rotate along the gear ring 304. The connecting shaft frame 506 is a rotating shaft structure, which can connect the fixed bracket 505, the fixed plate 507 and the telescopic push rod 5 of the driving limiting plate structure. In this way, when the telescopic push rod 5 is extended and adjusted, it can drive the photovoltaic panel 6 to rotate and adjust the angle along the lower connecting shaft frame 506. The photovoltaic panel 6 can perform photoelectric conversion through sunlight and is connected to the controller 2 through the inverter 601, thereby storing the electricity in the battery inside the controller 2. The fixed water pipe 602 can spray water from the cleaning nozzle 603 for cleaning by injecting water into it. The setting of the light sensor can assist in detecting the angle of the sun and tracking the adjustment.
[0053] like Figures 6 to 9 As shown, a drive shaft 703 is mounted in the middle of the three-cam 704, and a drive motor 702 is provided at the input end of the drive shaft 703. The drive motor 702 is fixedly connected to the top of the pump box 701 by bolts. One set of the inlet end of the transmission pipe 706 is inserted into the water tank 104, and the other set is inserted into the water surface with a built-in filter at the end. A diverter 707 is fixedly installed at the outlet end of the transmission pipe 706, and eight sets of connection ports 708 are installed on the top of the diverter 707.
[0054] A welding block 801 is welded to the top of the vertical tube 804, and the welding block 801 is welded to the inside of the right-angle bracket 102. A power motor 802 is fixedly installed on the top of the welding block 801 by bolts, and the output end of the power motor 802 is connected to the rotating shaft 803.
[0055] Using the above scheme: the drive motor 702 can drive the drive shaft 703 to rotate, and during the rotation, it will drive the three cams 704 to rotate, thereby pushing the liquid inside the hose 7 to be transported. The filter placed in the water tank can filter the liquid entering the transmission pipe 706 to a certain extent, thereby avoiding the clogging of the cleaning nozzle 603. The diverter 707 can divide the liquid entering the interior into eight groups, which are introduced into the corresponding annular water pipe 405 through the water pipe and sprayed out by the spray head 406, or introduced into the fixed water pipe 602 and sprayed out by the cleaning nozzle 603 to rinse the photovoltaic panel 6. The connection port 708 is used for auxiliary water pipe connection. The power motor 802 can drive the rotating shaft 803 and the propeller blade 8 to rotate to drive the water flow.
[0056] The construction method and usage process of this invention are as follows: First, connect the eight sets of connection ports 708 connected to the water tank 104 to the eight sets of annular water pipes 405 via water pipes to ensure that water can flow through the water tank 104 into the transmission pipe 706, and then through the hose 7 and out through the distributor 707. Then, connect the eight sets of connection ports 708 connected to the water surface to the interface at one end of the fixed water pipe 602 via water pipes to ensure that the water can flow normally. Then, connect each set of regulating motors 508, drive motors 702, telescopic push rods 5, inverters 601 and power motors 802 to the waterproof interface of the controller 2. Then, pass the uninflated floating airbag 4 through the middle of the fixed sleeve 301. The photovoltaic panel 6 is placed at the bottom of the arc-shaped bracket 3, and then the fixing block 402 is fixedly connected to the fixing sleeve 301 using bolts. Then, each set of fixing straps 404 is tied to the outside of the annular water pipe 405 and the fixing ring 302. An external inflation device is then connected to the inflation pipe 403. After connection, the floating airbag 4 is inflated, and the inflated floating airbag 4 will fit tightly against the inner wall of the arc-shaped bracket 3. The lower end and bottom of the photovoltaic panel 6 are then connected to the arc-shaped slider 503 and the fixing plate 507 via the connecting shaft bracket 506. After connection, according to the settings of the controller 2, the area of illumination is detected using a light sensor, and then the drive gear is controlled by adjusting the motor 508. During rotation, the meshing motion drives the arc-shaped slider 503 to slide and adjust its direction along the limiting ring 305. The extension rod 5 controls the piston rod at the output end to extend and retract, thereby adjusting the photovoltaic panel 6 along the connecting shaft frame 506, thus changing the angle of the photovoltaic panel 6. Then, the drive motor 702 drives the drive shaft 703 to rotate. During rotation, the three cams 704 rotate and squeeze the internal hose 7. During squeezing, the liquid inside the hose 7 is pushed towards one end of the distributor 707. Continuous rotation generates suction, drawing water from the water tank 104 and the water surface, which is then diverted through the distributor 707 and injected into the water pipes. Inside the annular water pipe 405, the spray head 406 at the bottom sprays out the internal agent to reduce water pool pollution. Another set of water is introduced into the filter and then injected into the fixed water pipe 602 through the water pipe. Finally, it is sprayed out by the cleaning nozzle 603, thereby rinsing the surface of the photovoltaic panel 6. Finally, the controller 2 controls the operation of each set of power motors 802. During the rotation, the rotating shaft 803 drives the propeller blades 8 to rotate. The internal structure rotation controls the rise or fall of the liquid. When the liquid rises inside, it will be discharged through the opening 805. The discharge will provide a certain degree of thrust. The magnitude of the thrust is controlled by the rotation speed. The movement of the entire device is controlled in this way.
[0057] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0058] Although embodiments of the 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 invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A floating pollution reduction and carbon reduction water purification device, comprising a support plate (1), characterized in that: Eight sets of stable floating components are provided on the outer side of the support plate (1), and the floating components are used to achieve the effect of stable floating. Drive components are fixedly installed on the outer side of the four corners of the support plate (1), and the drive components are used to control the movement of the device while improving stability. Energy-saving components are provided on the top of the support plate (1), and the energy-saving components are used to reduce energy consumption. The stable floating component includes a fixed sleeve (301), and eight sets of arc-shaped brackets (3) are welded and installed on the outer side of the lower end of the fixed sleeve (301). A fixed ring (302) is welded and installed at the bottom of the arc-shaped brackets (3). A floating airbag (4) is provided on the inner side of the arc-shaped brackets (3), and several sets of fixing straps (404) are fixedly installed on the outer side of the floating airbag (4). The fixing straps (404) contact and bind to the outer side of the fixing ring (302). An inflation end (401) is fixedly installed on the top of the floating airbag (4), and the inflation end (401) is movably located on the inner side of the fixed sleeve (301). A fixed bearing (501) is fixedly installed on the outer side of the fixed sleeve (301). The drive assembly includes a power motor (802), and a rotating shaft (803) is movably provided at the output end of the power motor (802). A propeller blade (8) is welded and installed on the surface of the rotating shaft (803), and a vertical tube (804) is separately provided on the outer side of the propeller blade (8). An opening (805) is provided on the upper end of the vertical tube (804) away from the support plate (1). The energy-saving component includes a pump-driven box (701), and a three-cam (704) is movably arranged inside the pump-driven box (701). Four sets of transmission pipes (706) are fixedly installed on the right side of the pump-driven box (701). A set of hoses (7) is installed inside two sets of transmission pipes (706) through a fixed connecting ring (705), and the hoses (7) are located between the three-cam (704) and the pump-driven box (701). The arc-shaped bracket (3) is fixedly installed with a support column (303) at three-quarters of its length from bottom to top, and a gear ring (304) is welded to the top of the support column (303). The inner and outer rings of the gear ring (304) are fitted with limit rings (305). An inflation tube (403) is installed on the top of the inflation end (401), and fixing blocks (402) are fixedly installed on both sides of the upper end of the inflation end (401). The fixing blocks (402) are fixed to the top of the fixing sleeve (301) by bolt structure. An annular water pipe (405) is provided on the inner side of the fixing strap (404), and several sets of spray heads (406) are installed at the bottom of the annular water pipe (405). Two sets of fixing rods (502) are welded and installed on one side of the fixed bearing (501), and an arc-shaped slider (503) is welded and installed at the end of the fixing rod (502). The arc-shaped slider (503) slides on the outside of the gear ring (304), and an arc-shaped groove (504) is opened on the inner side of the arc-shaped slider (503). The arc-shaped groove (504) matches the cross-sectional shape of the gear ring (304) and the limiting ring (305). An adjustment mechanism is installed on the right side of the upper end of the arc-shaped slider (503) near the fixed bearing (501) by bolts. The motor (508) is adjusted, and the output end of the motor (508) is provided with a drive gear. The drive gear is meshed on the top of the gear ring (304). The other end of the fixed bearing (501) is welded and installed with a fixed bracket (505). The inner side of the end of the fixed bracket (505) is fixed to the telescopic push rod (5) through the connecting shaft frame (506). The upper end of the telescopic push rod (5) is fixed to the fixed plate (507) through the connecting shaft frame (506). The top of the fixed plate (507) is fixed with a photovoltaic panel (6) by bolts. The lower end of the photovoltaic panel (6) is fixedly connected to the arc-shaped slider (503) through the connecting shaft frame (506), and an inverter (601) is fixed below the photovoltaic panel (6) by bolts. A fixed water pipe (602) is fixedly installed in the upper area of the photovoltaic panel (6), and several sets of cleaning nozzles (603) are installed at the bottom of the fixed water pipe (602). A light sensor is embedded in the surface of the photovoltaic panel (6). The three cams (704) are assembled with a drive shaft (703) in the middle, and a drive motor (702) is provided at the input end of the drive shaft (703). The drive motor (702) is fixedly connected to the top of the pump box (701) by bolts. One set of the inlet end of the transmission pipe (706) is inserted into the water tank (104), and the other set is inserted into the water surface and has a built-in filter at the end. A diverter (707) is fixedly installed at the outlet end of the transmission pipe (706), and eight sets of connection ports (708) are installed on the top of the diverter (707). The eight sets of connection ports (708) connected to the water tank (104) are connected to eight sets of annular water pipes (405) through water pipes. The eight sets of connection ports (708) connected to the water surface are connected to the interface at one end of the fixed water pipe (602) through water pipes.
2. The floating pollution reduction and carbon reduction water purification device according to claim 1, characterized in that: Right-angle brackets (102) are installed at the four corners of the support plate (1), and several sets of welded corner seats (101) are welded between the right-angle brackets (102) and the support plate (1). Four sets of limiting blocks (103) are fixedly installed on the top of the support plate (1), and a water tank (104) is fixedly installed on the inner side of the limiting block (103) by bolt structure. The water tank (104) contacts the top of the support plate (1), and a controller (2) is fixedly installed on the top of the front of the water tank (104) by bolt.
3. The floating pollution reduction and carbon reduction water purification device according to claim 2, characterized in that: The controller (2) has a control button (201) embedded on its front, a display screen (202) mounted on its top, and a gyroscope sensor inside its interior.
4. The floating pollution reduction and carbon reduction water purification device according to claim 1, characterized in that: A welding block (801) is welded to the top of the vertical pipe (804), and the welding block (801) is welded to the inside of the right-angle bracket (102). A power motor (802) is fixedly installed on the top of the welding block (801) by bolts.
5. A method for constructing a floating pollution reduction and carbon reduction water purification device according to any one of claims 1-4, characterized in that: S1. First, connect the eight sets of connection ports (708) connected to the water tank (104) to the eight sets of ring water pipes (405) through water pipes to ensure that the water flow can enter the transmission pipe (706) through the water tank (104) and then be discharged through the hose (7) by the distributor (707). Then connect the eight sets of connection ports (708) connected to the water surface to the interface at one end of the fixed water pipe (602) through water pipes to ensure that the water flow can flow normally. Then connect the regulating motor (508), drive motor (702), telescopic push rod (5), inverter (601) and power motor (802) to the waterproof interface of the controller (2). S2. Then, the uninflated floating airbag (4) is inserted through the middle of the fixing sleeve (301) and placed at the bottom of the arc-shaped bracket (3). Then, the fixing block (402) is fixedly connected to the fixing sleeve (301) using bolt structure. Then, each set of fixing straps (404) is tied to the outside of the ring water pipe (405) and the fixing ring (302). Then, the airbag is connected to the inflation pipe (403) through the external inflation device. After connection, the floating airbag (4) is inflated. The inflated floating airbag (4) will be tightly attached to the inner wall of the arc-shaped bracket (3). S3. Then connect the lower end of the photovoltaic panel (6) to the arc-shaped slider (503) through the connecting shaft frame (506). After connection, according to the setting of the controller (2), the light sensor is used to detect the area of light. Then, the drive gear is controlled to rotate by adjusting the motor (508). During the rotation, the arc-shaped slider (503) will be driven to slide along the limit ring (305) to adjust the direction. Then, the piston rod at the output end is controlled to extend and retract by the telescopic push rod (5), thereby driving the photovoltaic panel (6) to adjust along the connecting shaft frame (506) to change the angle of the photovoltaic panel (6). S4. Then, the drive shaft (703) is driven to rotate by the drive motor (702). When rotating, the three cams (704) will rotate and squeeze the internal hose (7). During the squeezing process, the liquid inside the hose (7) will be pushed to flow to one end of the distributor (707). Continuous rotation will generate suction, thereby drawing out the water tank (104) and the water surface, and then diverting it through the distributor (707). Then, it is injected into the interior of the annular water pipe (405) through the water pipe. The agent inside is sprayed out by the spray head (406) at the bottom to reduce the pollution of the pool. Another group will guide the pool water into the filter and filter it. Then, it will be injected into the interior of the fixed water pipe (602) through the water pipe. Finally, it will be sprayed out by the cleaning nozzle (603) to rinse the surface of the photovoltaic panel (6). S5. Finally, the controller (2) controls the operation of each group of power motors (802). During the rotation, the rotating shaft (803) will drive the propeller blades (8) to rotate. The internal structure is rotated to control the liquid to rise or fall. When the liquid rises inside, it will be discharged through the opening (805). The discharge will provide a certain degree of thrust. The magnitude of the thrust will be controlled by the rotation speed. The movement of the whole device is controlled in this way.
Citation Information
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