Energy-saving seawater desalination equipment with wind power generation function

By introducing clearing devices, wind power generation and solar power generation devices into seawater desalination equipment, the problem of filter grid blockage is solved, seawater purification efficiency is improved, energy-saving seawater desalination is achieved.

CN116282645BActive Publication Date: 2025-08-29HUANENG GUANYUN CLEAN ENERGY CO LTD
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Patent Information

Application Number
CN202310065303.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-01-17
Publication Date
2025-08-29
Estimated Expiration
2043-01-17

AI Technical Summary

Technical Problem

The filter mesh of existing energy-saving seawater desalination equipment is easily blocked by small particles, resulting in a decline in seawater purification efficiency and a large energy consumption.

Method used

An energy-saving seawater desalination equipment with wind power generation function was designed, including a blocking device, a solar power generation device and a wind power generation device. The filter blockage is cleaned through the blocking device, and the wind and solar power generation are used to reduce energy consumption.

Benefits of technology

Effectively prevent filter clogging, improve seawater purification efficiency, reduce equipment energy consumption, and achieve energy-saving seawater desalination.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of seawater desalination equipment, and discloses an energy-saving seawater desalination equipment with a wind power generation function, comprising a base, a support base, a housing, a seawater inlet pipe, a seawater output pipe, a filter device, and a blockage removal device. The housing is fixed to the base, the seawater inlet pipe is connected to the housing, and filter devices are respectively provided at the input end of the seawater inlet pipe and at the connection between the seawater inlet pipe and the housing. The support base is sleeved on the seawater inlet pipe and is located between the two filter devices, with one end fixed to the base. The blockage removal device is installed in the support base. The housing is divided into a desalination zone, a mineral addition zone, and a disinfection zone in the input direction of the seawater inlet pipe by an isolation plate and a control valve on the isolation plate. The seawater output pipe is connected to the disinfection zone and extends outside the housing. The above-mentioned equipment can effectively solve the problem of filter blockage and improve the efficiency of seawater purification.
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Description

Technical Field

[0001] The present invention relates to the technical field of seawater desalination equipment, and in particular to energy-saving seawater desalination equipment with a wind power generation function. Background Art

[0002] Seawater desalination equipment refers to equipment specifically used to desalinate seawater. The desalination methods currently used include seawater freezing, electrodialysis, and distillation. It is an open-source incremental technology for realizing water resource utilization, which can increase the total amount of fresh water and is not affected by time, space, and climate. Energy-saving seawater desalination equipment is a member of seawater desalination equipment. It can ensure a stable water supply for drinking water for coastal residents and water replenishment for industrial boilers, and has the advantages of good water quality and reasonable price.

[0003] There are still some problems with energy-saving seawater desalination equipment: some energy-saving seawater desalination equipment uses quartz sand filters to filter out large particles of impurities in seawater, and then uses filter nets to filter out small particles of impurities. As the use time increases, the filter nets are easily clogged by small particles of impurities, and replacing the filter nets in energy-saving seawater desalination equipment is time-consuming and labor-intensive, which leads to a decline in seawater purification efficiency. In addition, some energy-saving seawater desalination equipment consumes a lot of energy and cannot meet people's usage needs.

[0004] Therefore, how to provide an energy-saving seawater desalination device with wind power generation function to solve the problem of filter clogging and thus improve the seawater purification efficiency is a technical problem to be solved by those skilled in the art. Summary of the Invention

[0005] The present invention provides an energy-saving seawater desalination device with a wind power generation function, which is used to solve the problem in the prior art that the filter screen inside some energy-saving seawater desalination devices is easily clogged by small particles of impurities as the service time increases, resulting in a decrease in seawater purification efficiency.

[0006] In order to achieve the above-mentioned objectives, the present invention provides an energy-saving seawater desalination equipment with wind power generation function, including a base, a support base, a box body, a seawater inlet pipe, a seawater output pipe, a filter device and a blockage clearing device. The box body is fixed on the base, the seawater inlet pipe is connected to the box body, and the filter device is respectively arranged at the input end of the seawater inlet pipe and the connection between the seawater inlet pipe and the box body. The support base is sleeved on the seawater inlet pipe and is located between the two filter devices and one end is fixed on the base. The blockage clearing device is installed in the support base. The box body is divided into a desalination zone, a mineral addition zone and a disinfection zone in sequence in the input direction of the seawater inlet pipe by an isolation plate and a control valve on the isolation plate. The seawater output pipe is connected to the disinfection zone and extends to the outside of the box body.

[0007] Furthermore, the blockage clearing device includes a mounting plate, a turntable, a connecting shaft, an output motor, an extrusion shaft, a movable part, a transmission gear, a rack, a collision rod, a spring and a rubber hammer. The middle part of the support seat is fixedly connected to the mounting plate, and one side of the mounting plate is connected to the turntable. The middle part of the turntable is rotatably connected to the connecting shaft. The side of the connecting shaft away from the turntable is connected to the output end of the output motor, and the top of the turntable is fixedly connected to the extrusion shaft on the side away from the output motor. The extrusion shaft is connected to the movable part through a movable groove. The bottom end of the movable part is movably connected to the transmission gear, and the transmission gear is meshed and connected to the rack. The bottom end of the rack is connected to the collision rod. The two sides of the collision rod are sleeved with the springs, and the sides of the springs away from each other are connected to the rubber hammer.

[0008] Furthermore, a filter screen is provided inside the filter device and the filter device is connected to the seawater input pipe.

[0009] Furthermore, a movable groove is provided inside the movable part for docking with the extrusion shaft, and limiting seats are docked with the collision rod on both sides of the bottom end of the mounting plate.

[0010] Furthermore, it also includes a stirring device, which is arranged above the disinfection area through the isolation plate, and includes a stirring motor. The output end of the stirring motor is connected to an output gear, and the top end of the output gear is meshed and connected to a first bevel gear, and the bottom end of the output gear is meshed and connected to a second bevel gear. A first rotating column is movably connected inside the first bevel gear, and a first stirring rod is connected to the outer wall of the bottom end of the first rotating column.

[0011] Furthermore, a second rotating column is movably connected inside the second bevel gear, and a second stirring rod is connected to the outer wall of the bottom end of the second rotating column.

[0012] Furthermore, it also includes a solar power generation device, which is arranged above the mineral addition area through the isolation plate, including a dual-axis motor, fixed columns are provided on both sides of the dual-axis motor, and the output end of the dual-axis motor is connected to a first gear.

[0013] Furthermore, the first gear is meshedly connected to the second gear, and the first gear is connected to the first connecting rod through a fixed shaft, the second gear is connected to the second connecting rod through a transfer shaft, and the second connecting rod is rotatably connected to the top end of the first connecting rod through a transfer seat.

[0014] Furthermore, a lifting seat is fixedly connected to the top of the adapter seat, and a solar power generation panel is docked on one side of the lifting seats close to each other, and a movable door is installed above the solar power generation panel on the box body.

[0015] Furthermore, it also includes a wind power generation device, which is arranged above the desalination area through the isolation plate, includes a support column, and the support column is equipped with a power generation box, the power generation box is docked with power generation blades, and the power generation box is connected to a battery through a wire.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] The present invention discloses an energy-saving seawater desalination device with a wind power generation function, comprising a base, a support base, a housing, a seawater inlet pipe, a seawater output pipe, a filter device, and a blockage removal device. The housing is fixed on the base, the seawater inlet pipe is connected to the housing, the filter devices are respectively provided at the input end of the seawater inlet pipe and at the connection between the seawater inlet pipe and the housing, the support base is sleeved on the seawater inlet pipe and is located between the two filter devices, and one end is fixed to the base, the blockage removal device is installed in the support base, the housing is divided into a desalination zone, a mineral addition zone, and a disinfection zone in the input direction of the seawater inlet pipe by an isolation plate and a control valve on the isolation plate, and the seawater output pipe is connected to the disinfection zone and extends outside the housing. The above-mentioned equipment can effectively solve the problem of filter blockage and improve the efficiency of seawater purification. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 A schematic diagram of the main structure of an energy-saving seawater desalination device with wind power generation function proposed in an embodiment of the present invention is shown;

[0019] Figure 2 A schematic diagram of a front cross-sectional structure of an energy-saving seawater desalination device with a wind power generation function proposed in an embodiment of the present invention is shown;

[0020] Figure 3 A schematic diagram of a front cross-sectional structure of a support base of an energy-saving seawater desalination device with a wind power generation function proposed in an embodiment of the present invention is shown;

[0021] Figure 4 A schematic diagram showing a left-side cutaway structure of a mounting plate of an energy-saving seawater desalination device with wind power generation function proposed in an embodiment of the present invention

[0022] Figure 5 A schematic diagram showing the main cross-sectional structure of the first rotating column of an energy-saving seawater desalination device with wind power generation function proposed in an embodiment of the present invention

[0023] Figure 6 A schematic diagram of a top view of a cross-sectional structure of a second rotating column of an energy-saving seawater desalination device with a wind power generation function proposed in an embodiment of the present invention is shown;

[0024] Figure 7 A schematic diagram of a front cross-sectional structure of a fixed column of an energy-saving seawater desalination device with a wind power generation function proposed in an embodiment of the present invention is shown;

[0025] Figure 8 The diagram shows a right side structural diagram of the first gear of an energy-saving seawater desalination device with wind power generation function proposed in an embodiment of the present invention.

[0026] In the figure, 1. base; 2. housing; 3. seawater inlet pipe; 4. support base; 5. filter device; 6. filter screen; 7. mounting plate; 8. turntable; 9. connecting shaft; 10. output motor; 11. extrusion shaft; 12. movable part; 13. transmission gear; 14. rack; 15. collision rod; 16. spring; 17. rubber hammer; 18. desalination zone; 19. mineral addition zone; 20. disinfection zone; 21. isolation plate; 22. stirring motor; 23. output gear; 24. First bevel gear; 25. Second bevel gear; 26. First rotating column; 27. First stirring rod; 28. Second rotating column; 29. ​​Second stirring rod; 30. Dual-axis motor; 31. Fixed column; 32. First gear; 33. Second gear; 34. First connecting rod; 35. Second connecting rod; 36. Adapter; 37. Lifting seat; 38. Solar panel; 39. Movable door; 40. Support column; 41. Generator box; 42. Generator blades; 43. Battery. DETAILED DESCRIPTION

[0027] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention but are not intended to limit the scope of the present invention.

[0028] In the description of this application, it should be understood that the terms "center", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.

[0029] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature specified as "first" or "second" may explicitly or implicitly include one or more of such features. Throughout this application, unless otherwise specified, "plurality" means two or more.

[0030] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.

[0031] The present invention provides an energy-saving seawater desalination device with a wind power generation function, comprising a base, a support base, a housing, a seawater inlet pipe, a seawater output pipe, a filter device and a blockage clearing device. The housing is fixed on the base, the seawater inlet pipe is connected to the housing, the filter devices are respectively arranged at the input end of the seawater inlet pipe and at the connection between the seawater inlet pipe and the housing, the support base is sleeved on the seawater inlet pipe and is located between the two filter devices, and one end is fixed to the base, the blockage clearing device is installed in the support base, and the housing is divided into a desalination zone, a mineral addition zone and a disinfection zone in sequence in the input direction of the seawater inlet pipe by an isolation plate and a control valve on the isolation plate. The seawater output pipe is connected to the disinfection zone and extends to the outside of the housing.

[0032] In this embodiment, seawater enters various functional areas of the box after passing through the dual filtering devices. A clearing device is provided between the dual filtering devices so that the filtering devices can be cleaned in time when they are blocked.

[0033] Furthermore, in order to improve the efficiency of the blockage clearing and filtering device, in some embodiments of the present application, the blockage clearing device includes a mounting plate, a turntable, a connecting shaft, an output motor, an extrusion shaft, a movable part, a transmission gear, a rack, a collision rod, a spring and a rubber hammer. The middle part of the support seat is fixedly connected to the mounting plate, and one side of the mounting plate is connected to the turntable. The middle part of the turntable is rotatably connected to the connecting shaft. The side of the connecting shaft away from the turntable is connected to the output end of the output motor, and the top of the turntable is fixedly connected to the extrusion shaft on the side away from the output motor. The extrusion shaft is connected to the movable part through a movable groove. The bottom end of the movable part is movably connected to the transmission gear, and the transmission gear is meshed and connected to the rack. The bottom end of the rack is connected to the collision rod. The two sides of the collision rod are sleeved with the springs, and the sides of the springs away from each other are connected to the rubber hammer.

[0034] In this embodiment, after the seawater is guided to the quartz sand filter by a water pump, the large particles of impurities in the seawater are filtered out by the quartz sand filter, and then the seawater is guided to the inside of the box through the seawater inlet pipe for desalination treatment. First, the small particles of impurities in the seawater are filtered out through the filter screen inside the filter device, and then the output motor is started to drive the turntable to rotate. The rotation of the turntable drives the bottom end of the movable part to swing left and right through the extrusion shaft, and then the mutual cooperation between the movable transmission gear and the rack causes the collision rod to move left and right, causing the rubber hammer to collide with the filter device, and the collision rod causes the spring to deform during the movement of the collision rod along the limit seat. The spring reset assists the rubber hammers on both sides of the collision rod to collide with the filter device, thereby shaking off the impurities on the filter screen to prevent the filter screen from being blocked. Therefore, when the energy-saving seawater desalination equipment is working, it has the function of improving the seawater filtration efficiency and preventing the filter screen from being blocked.

[0035] Furthermore, in order to improve the filtering efficiency of the filtering device, in some embodiments of the present application, a filter screen is provided inside the filtering device and the filtering device is connected to the seawater inlet pipe.

[0036] Furthermore, in order to improve the stability of the blockage clearing device, in some embodiments of the present application, a movable groove is provided inside the movable part for docking with the extrusion shaft, and limit seats are docked with the collision rod on both sides of the bottom end of the mounting plate.

[0037] Furthermore, in order to improve the disinfection efficiency of the disinfection zone, some embodiments of the present application further include a stirring device, which is arranged above the disinfection zone through the isolation plate and includes a stirring motor, wherein the output end of the stirring motor is connected to an output gear, and the top end of the output gear is meshedly connected to a first bevel gear, and the bottom end of the output gear is meshedly connected to a second bevel gear, a first rotating column is movably connected inside the first bevel gear, and a first stirring rod is connected to the outer wall of the bottom end of the first rotating column. A second rotating column is movably connected inside the second bevel gear, and a second stirring rod is connected to the outer wall of the bottom end of the second rotating column.

[0038] In this embodiment, when desalination treatment is carried out through the desalination zone, the mineral addition zone and the disinfection zone, the stirring motor is first started to drive the output gear to rotate, and then the output gear rotates to drive the first bevel gear to rotate forward and the second bevel gear to rotate reversely. At this time, the first bevel gear drives the first rotating column to rotate forward, and the second bevel gear drives the second rotating column to rotate reversely, resulting in relative stirring between the first stirring rod and the second stirring rod, thereby increasing the reaction speed of the disinfectant and the fresh water, so that when the energy-saving seawater desalination equipment is working, it has the function of improving the fresh water disinfection efficiency.

[0039] Furthermore, in order to effectively utilize solar energy for power generation, some embodiments of the present application further include a solar power generation device, which is disposed above the mineral addition zone via the isolation plate and includes a dual-axis motor, with fixed columns disposed on both sides of the dual-axis motor, and a first gear connected to the output end of the dual-axis motor. The first gear is meshedly connected to a second gear, which is connected to a first connecting rod via a fixed shaft, and the second gear is connected to a second connecting rod via a transfer shaft, and the second connecting rod is rotatably connected to the top of the first connecting rod via a transfer seat. A lifting seat is fixedly connected to the top of the transfer seat, and a solar panel is connected to the side of the lifting seat closest to each other, and a movable door is installed above the solar panel.

[0040] In this embodiment, when performing seawater desalination treatment, it is found that the sunlight is good, the movable door is opened first, and then the dual-axis motor is started to drive the first gear and the second gear to rotate, and then the first gear drives the first connecting rod to rotate, and the second gear drives the second connecting rod to rotate, causing the angle between the first connecting rod and the second connecting rod to change, and then driving the adapter seat to move upward, so that the total length between the lifting seat and the fixed column increases, and then the solar power generation panel is exposed outside the box to perform solar power generation, thereby reducing the power consumption during the seawater desalination treatment process, thereby having the function of reducing the power consumption of the energy-saving seawater desalination equipment.

[0041] Furthermore, in order to effectively utilize wind power for power generation, some embodiments of the present application also include a wind power generation device, which is arranged above the desalination area through the isolation plate, including a support column, and the support column is equipped with a power generation box, the power generation box is docked with power generation fan blades, and the power generation box is connected to a battery through a wire.

[0042] In this embodiment, during the seawater desalination process, the sea breeze blows through the box, causing the generator blades to rotate, and then wind power generation is performed through the cooperation of the generator box. The electricity generated by the generator box is then conducted to the battery for storage through the wires inside the support column for use in the seawater desalination equipment, thereby giving the energy-saving seawater desalination equipment the function of wind power generation.

[0043] The following will be combined Figure 1 - Figure 8 The working mode of the energy-saving seawater desalination device with wind power generation function according to the embodiment of the present application is described as follows:

[0044] like Figure 1As shown in FIG-8, in the embodiment of the present application, the base 1, the box 2 and the seawater inlet pipe 3 are included. The top of the base 1 is fixedly connected to the box 2, and the seawater inlet pipe 3 is installed on one side of the box 2, and the output pipe is installed on the other side of the box 2. The outer wall of the seawater inlet pipe 3 is sleeved with a support base 4, and filter devices 5 are provided on both sides of the support base 4, and a filter screen 6 is docked inside the filter device 5. A mounting plate 7 is fixedly connected to the middle of the support base 4, and a turntable 8 is connected to one side of the mounting plate 7, and a connecting shaft 9 is rotatably connected to the middle of the turntable 8. The connecting shaft 9 is away from the turntable 8. The side is connected to the output end of the output motor 10, and the top of the turntable 8 is fixedly connected to the side of the output motor 10, and the extrusion shaft 11 is connected to the movable part 12 through the movable groove. The bottom end of the movable part 12 is movably connected to the transmission gear 13, and the transmission gear 13 is meshed with the rack 14, and the bottom end of the rack 14 is connected to the collision rod 15. The two sides of the collision rod 15 are sleeved with springs 16, and the side of the springs 16 away from each other is connected to a rubber hammer 17. A desalination area 18 is provided on the side of the box body 2 close to the support seat 4, and the desalination area 1 8 is provided with a mineral addition area 19 on the side away from the support seat 4, and a disinfection area 20 is provided on the side of the mineral addition area 19 away from the desalination area 18, and an isolation plate 21 is installed inside the box body 2; the bottom end of the support seat 4 is fixedly connected to the base 1, and the filter device 5 is docked on the seawater inlet pipe 3; a movable groove for docking with the extrusion shaft 11 is opened inside the movable part 12, and limit seats for docking with the collision rod 15 are docked on both sides of the bottom end of the mounting plate 7, and the limit seats are symmetrically distributed about the vertical midline of the mounting plate 7, and the filter device 5 is vertically aligned with the vertical midline of the mounting plate 7. The lines are symmetrically distributed. The desalination area 18, the mineral addition area 19 and the disinfection area 20 are connected by an isolation plate 21. The output motor 10 is docked on the support seat 4 through a support block. The top of the movable part 12 is docked on the mounting plate 7 through a rotating shaft, and the movable part 12 and the turntable 8 are parallel to each other. The rubber hammer 17 is fixedly connected to the collision rod 15, and an elastic telescopic mechanism is formed between the collision rod 15, the rubber hammer 17, the mounting plate 7 and the spring 16. A control valve is installed on the isolation plate 21 between the desalination area 18, the mineral addition area 19 and the disinfection area 20.

[0045] In a specific implementation, when the energy-saving seawater desalination equipment is working, the seawater is guided to the quartz sand filter by the water pump, and the large particles of impurities in the seawater are filtered by the quartz sand filter. Then, the seawater is guided to the inside of the box 2 through the seawater inlet pipe 3 for seawater desalination treatment. The seawater passes through the filter mesh 6 inside the filter device 5 and is filtered twice, thereby filtering out the small particles of impurities in the seawater. Then, the output motor 10 is started, and the output motor 10 drives the turntable 8 to rotate through the connecting shaft 9. The rotation of the turntable 8 drives the extrusion shaft 11 to rotate. At this time, the extrusion shaft 11 drives the movable part 12 to rotate through the movable groove. Because the top of the movable part 12 is movably connected to the mounting plate 7 through the rotating shaft, the movable part 12 The bottom end can only swing left and right. At this time, the transmission gear 13 and the rack 14 are meshed and connected, and then the movable part 12 drives the rack 14 to move left and right through the transmission gear 13. The movement of the rack 14 drives the collision rod 15 to move. Then, the collision rod 15 squeezes the spring 16 during the movement of the limit seat, causing the spring 16 to deform. The spring 16 resets and drives the collision rod 15 to reset, and then assists in driving the rubber hammers 17 on both sides of the collision rod 15 to collide with the filter device 5, thereby shaking off impurities on the filter screen 6, preventing the filter screen 6 from being blocked, and improving the filtration efficiency. Finally, when the energy-saving seawater desalination equipment is working, it plays a role in improving the seawater filtration efficiency and preventing the filter screen 6 from being blocked.

[0046] See Figure 2 , Figure 5 and Figure 6 It can be seen that a stirring motor 22 is installed above the disinfection area 20 through an isolation plate 21, and the output end of the stirring motor 22 is docked with an output gear 23, and the top of the output gear 23 is meshed with a first bevel gear 24; the bottom end of the output gear 23 is meshed with a second bevel gear 25, and the first rotating column 26 is movably connected inside the first bevel gear 24, and the outer wall of the bottom end of the first rotating column 26 is docked with a first stirring rod 27; the second bevel gear 25 is movably connected inside the second rotating column 28, and the outer wall of the bottom end of the second rotating column 28 is docked with a second stirring rod 29; the first bevel gear 24 and the second bevel gear 25 are parallel to each other, the outer wall of the first rotating column 26 is sleeved with the second rotating column 28, and the first stirring rod 27 is distributed at equal angles on the first rotating column 26, and the second stirring rod 29 is distributed at equal angles on the second rotating column 28, the top of the first rotating column 26 is docked on the box body 2, and the stirring motor 22 is fixedly connected to the isolation plate 21.

[0047] During specific implementation, when the energy-saving seawater desalination equipment is working, the salt in the seawater is first removed through the desalination area 18, and minerals are added to the water flow through the mineral adding area 19. Then, when the fresh water is disinfected through the disinfection area 20, the stirring motor 22 is started, and the stirring motor 22 drives the output gear 23 to rotate. At this time, the output gear 23 is meshed with the first bevel gear 24 and the second bevel gear 25, thereby driving the first bevel gear 24 to rotate forward and the second bevel gear 25 to rotate reversely. Then, the first bevel gear 24 rotates forward to drive the first rotating column 26 to rotate, and the rotation of the first rotating column 26 drives the first stirring rod 27 to rotate forward. At this time, the second bevel gear 25 rotates reversely to drive the second rotating column 28 to rotate, and the rotation of the second rotating column 28 drives the second stirring rod 29 to rotate reversely, resulting in relative stirring between the first stirring rod 27 and the second stirring rod 29, thereby fully reacting the disinfectant with the fresh water, thereby improving the disinfection efficiency of the fresh water, thereby improving the disinfection efficiency of the fresh water when the energy-saving seawater desalination equipment is working.

[0048] See Figure 2 , Figure 7 and Figure 8 It can be seen that a dual-axis motor 30 is connected to the top of the mineral addition area 19 through an isolation plate 21, and fixed columns 31 are provided on both sides of the dual-axis motor 30, and the output end of the dual-axis motor 30 is connected to a first gear 32; the first gear 32 is meshed with a second gear 33, and the first gear 32 is connected to a first connecting rod 34 through a fixed shaft, and the second gear 33 is connected to a second connecting rod 35 through a transfer shaft, and the second connecting rod 35 is rotatably connected to the top of the first connecting rod 34 with a transfer seat 36; the top of the transfer seat 36 is fixedly connected to a lifting seat 37, and the lifting seat 37 is connected to a solar power generation panel 38 on one side close to each other, and the box 2 is connected to the solar panel 38 on the other side. A movable door 39 is installed above the power generation panel 38; the dual-axis motor 30 is fixedly connected to the isolation plate 21, and the bottom end of the fixed column 31 is fixedly connected to the isolation plate 21, and the fixed column 31 is symmetrically distributed about the vertical center line of the dual-axis motor 30, the first connecting rod 34 and the second connecting rod 35 are parallel to each other, and the first connecting rod 34 and the second connecting rod 35 are symmetrically distributed about the vertical center line of the dual-axis motor 30, the solar power generation panel 38 and the movable door 39 are parallel to each other, and the lifting seat 37 is symmetrically distributed about the vertical center line of the solar power generation panel 38, and the box body 2 is provided with a movable cavity above the solar power generation panel 38.

[0049] During specific implementation, when the energy-saving seawater desalination equipment guides seawater into the interior of the box body 2 through a water pump for seawater desalination treatment, when it is found that the sunlight is good, the movable door 39 is opened first, and then the dual-axis motor 30 is started. The dual-axis motor 30 drives the first gear 32 to rotate. At this time, the first gear 32 and the second gear 33 are meshed and connected. The rotation of the first gear 32 drives the second gear 33 to rotate. Then the rotation of the first gear 32 drives the first connecting rod 34 to rotate through the fixed shaft, and the rotation of the second gear 33 drives the second connecting rod 35 to rotate through the adapter shaft, causing the angle between the first connecting rod 34 and the second connecting rod 35 to change, thereby driving the adapter seat 36 to move upward, causing the total length between the lifting seat 37 and the fixed column 31 to change, and then the solar power generation panel 38 to appear outside the box body 2 through the movable cavity to perform solar power generation, thereby reducing the power consumption during the seawater desalination treatment process, thereby having the function of reducing the power consumption of the energy-saving seawater desalination equipment.

[0050] See Figure 1 and Figure 2 It can be seen that the box body 2 is fixedly connected to a support column 40 above the desalination area 18, and the support column 40 is installed with a power generation box 41, and the power generation fan blades 42 are docked inside the power generation box 41. The power generation box 41 is connected to a battery 43 through a wire, and the battery 43 is docked on the isolation plate 21 through a mounting seat. A wiring groove for docking with the wire is opened inside the support column 40.

[0051] During specific implementation, when the energy-saving seawater desalination equipment guides seawater into the box 2 for desalination treatment through a water pump, the sea breeze blows through the box 2, causing the generator blades 42 to rotate. Then, the generator blades 42 rotate to generate electricity through the cooperation of the generator box 41, and then the electricity generated by the generator box 41 is guided to the battery 43 through the wires inside the support column 40 for storage, and then used for the operation of the seawater desalination equipment, thereby enabling the energy-saving seawater desalination equipment to have the function of wind power generation and reduce energy consumption.

[0052] In summary, when the energy-saving seawater desalination equipment is working, the seawater is guided to the quartz sand filter by the water pump, and the large particles of impurities in the seawater are filtered out by the quartz sand filter. Then, when the seawater is guided to the inside of the box 2 through the seawater inlet pipe 3, the small particles of impurities in the seawater are first filtered out through the filter screen 6 inside the filter device 5, and then the output motor 10 is started to make the rubber hammer 17 collide with the filter device 5, thereby shaking off the impurities on the filter screen 6 to prevent the filter screen 6 from being blocked. Therefore, when the energy-saving seawater desalination equipment is working, it has the function of improving the seawater filtration efficiency and preventing the filter screen 6 from being blocked. Then, the filtered seawater is guided to the desalination area 18 for seawater desalination treatment. After the seawater is desalinated, the control valve on the isolation plate 21 is opened to guide the seawater to the mineral addition area 19, and then minerals are added to the water flow through the mineral addition area 19 for people to drink. After the minerals are added, After completion, the control valve on the isolation plate 21 is opened to guide the seawater to the disinfection area 20 for fresh water disinfection treatment. By starting the stirring motor 22, relative stirring is caused between the first stirring rod 27 and the second stirring rod 29, thereby improving the disinfection efficiency of the fresh water. Therefore, when the energy-saving seawater desalination equipment is working, it has the function of improving the fresh water disinfection efficiency. When it is found that the sunlight is good, the movable door 39 is opened first, and then the dual-axis motor 30 is started to display the solar power generation panel 38 outside the box body 2 to perform solar power generation and reduce power consumption, thereby having the function of reducing the power consumption of the energy-saving seawater desalination equipment. The sea breeze at the seaside rotates the power generation fan blades 42, and then the power generation box 41 cooperates to generate electricity, so that the energy-saving seawater desalination equipment has the function of wind power generation. The content not described in detail in this description belongs to the existing technology known to professional and technical personnel in this field.

[0053] By applying the above technical solution, an energy-saving seawater desalination device with wind power generation function includes a base, a support base, a housing, a seawater inlet pipe, a seawater output pipe, a filter device and a blockage removal device. The housing is fixed on the base, the seawater inlet pipe is connected to the housing, and the filter device is respectively provided at the input end of the seawater inlet pipe and the connection between the seawater inlet pipe and the housing. The support base is sleeved on the seawater inlet pipe and is located between the two filter devices and one end is fixed to the base. The blockage removal device is installed in the support base. The housing is divided into a desalination zone, a mineral addition zone and a disinfection zone in sequence in the input direction of the seawater inlet pipe by an isolation plate and a control valve on the isolation plate. The seawater output pipe is connected to the disinfection zone and extends to the outside of the housing. The above equipment can effectively solve the problem of filter blockage and improve the efficiency of seawater purification.

[0054] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present application.

Claims

1. An energy-saving seawater desalination device with wind power generation function, characterized in that: The invention comprises a base, a support base, a housing, a seawater inlet pipe, a seawater outlet pipe, a filter device and a blockage clearing device, wherein the housing is fixed on the base, the seawater inlet pipe is connected to the housing, the filter devices are respectively arranged at the input end of the seawater inlet pipe and at the connection between the seawater inlet pipe and the housing, the support base is sleeved on the seawater inlet pipe and is located between the two filter devices, and one end is fixed to the base, the blockage clearing device is installed in the support base, the housing is divided into a desalination zone, a mineral addition zone and a disinfection zone in the input direction of the seawater inlet pipe by an isolation plate and a control valve on the isolation plate, and the seawater outlet pipe is connected to the disinfection zone and extends outside the housing; The drive gear of said sliding panel also is provided with an interlocking structure, and the interlocking structure is designed to interlock the plurality of interlocking structures. The interlocking structures include a plurality of interlocking structures including a gear train and a plurality of interlocking structures. The interlocking structures include a plurality of interlocking structures including a gear train and a plurality of interlocking structures. The plurality of interlocking structures include a gear train and a plurality of interlocking structures. When seawater is desalinated through the seawater input pipe and directed into the interior of the box, small particles of impurities in the seawater are first filtered through the filter screen inside the filter device, and then the output motor is started to drive the turntable to rotate. The rotation of the turntable drives the bottom end of the movable part to swing left and right through the extrusion shaft. Through the mutual cooperation of the transmission gear and the rack, the collision rod moves left and right, causing the rubber hammer to collide with the filter device. In the process of the collision rod moving left and right along the limit seat, the spring is deformed, and the spring reset assists the rubber hammers on both sides of the collision rod to collide with the filter device, thereby shaking off the impurities on the filter screen.

2. The device according to claim 1, characterized in that A filter screen is provided inside the filter device and the filter device is docked on the seawater input pipe.

3. The device according to claim 1, characterized in that It also includes a stirring device, which is arranged above the disinfection area through the isolation plate, and includes a stirring motor. The output end of the stirring motor is connected to an output gear, and the top end of the output gear is meshed and connected to a first bevel gear, and the bottom end of the output gear is meshed and connected to a second bevel gear. A first rotating column is movably connected inside the first bevel gear, and a first stirring rod is connected to the outer wall of the bottom end of the first rotating column.

4. The device according to claim 3, characterized in that A second rotating column is movably connected inside the second bevel gear, and a second stirring rod is butted against an outer wall of the bottom end of the second rotating column.

5. The device according to claim 1, characterized in that It also includes a solar power generation device, which is arranged above the mineral addition area through the isolation plate, and includes a dual-axis motor, with fixing columns arranged on both sides of the dual-axis motor, and the output end of the dual-axis motor is connected to a first gear.

6. The device according to claim 5, characterized in that The first gear is meshed with the second gear, and the first gear is connected to the first connecting rod through a fixed shaft. The second gear is connected to the second connecting rod through a transfer shaft, and the second connecting rod is rotatably connected to the top end of the first connecting rod through a transfer seat.

7. The device according to claim 6, characterized in that The top of the adapter is fixedly connected with a lifting seat, and the sides of the lifting seats close to each other are butted with solar panels, and the box body is provided with a movable door above the solar panels.

8. The device according to claim 1, characterized in that It also includes a wind power generation device, which is arranged above the desalination area through the isolation plate and includes a support column, and the support column is equipped with a power generation box, the power generation box is docked with power generation blades, and the power generation box is connected to a battery through a wire.

Citation Information

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