Efficient energy-saving purification system
By combining solar panels and water purifiers, the system generates electricity on sunny days and purifies rainwater on rainy days, solving the problem of the single function of traditional rooftop rainwater purification systems. This achieves high efficiency and energy saving, multi-dimensional resource utilization, and the reuse of tree leaves, thus improving energy-saving effects and functional diversity.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-11
- Publication Date
- 2026-04-14
AI Technical Summary
Traditional rooftop rainwater energy-saving and purification systems have limited functionality and their energy-saving effects are not outstanding.
By combining solar panels and water purifiers, the solar panels generate electricity on sunny days and rainwater is used for purification on cloudy or rainy days. The water storage tank is equipped with a filter and water purifier. After purification, the rainwater is stored, and the leaves are used as organic fertilizer. The pusher and cutter enable the reuse of leaves, and the convex surface refractive coating improves the efficiency of sunlight collection.
It achieves multi-dimensional utilization of natural resources, high efficiency and energy saving, diverse functions, reduced environmental impact, and realizes the effects of water saving, energy saving and environmental protection.
Smart Images

Figure CN121853751A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of energy conservation and environmental protection technology, and in particular to a high-efficiency energy-saving purification system. Background Technology
[0002] Rooftop rainwater energy-saving purification systems are also a type of water-saving system based on rooftop rainwater harvesting. They treat rainwater and use it to replace drinking water for some cleaning purposes, such as bathrooms, laundry, and toilet flushing, while also irrigating plants. Through rooftop rainwater energy-saving purification systems, we can make full use of rainwater resources, reduce urban water pressure, and achieve water-saving, energy-saving, and environmentally friendly effects.
[0003] Currently, traditional rooftop rainwater energy-saving and purification systems have relatively limited functions and their energy-saving effects are not outstanding. Summary of the Invention
[0004] To demonstrate the versatility of energy-saving purification systems, this application provides a highly efficient energy-saving purification system.
[0005] The high-efficiency energy-saving purification system provided in this application adopts the following technical solution: A high-efficiency energy-saving purification system includes a base on which a solar panel is mounted at an angle. A battery is located below the solar panel and is electrically connected to it. A water storage tank is also mounted on the base at the bottom end of the solar panel. A horizontally arranged filter screen is installed inside the water storage tank. A water purifier is installed inside the water storage tank. A first valve is located at the bottom of the water storage tank, which can connect to a user's water tank.
[0006] By adopting the above technical solution, on sunny days, the solar panels can absorb sunlight, which is converted into electrical energy and stored in the battery. At the same time, during cloudy and rainy weather, rainwater falls on the surface of the solar panels and flows into the water storage tank. Large leaves carried by the rainwater are blocked and filtered by the filter screen. The rainwater enters the water storage tank and is purified by turning on the water purifier. The water then flows into the user's water storage tank through the first valve for storage. The energy-saving purification system in this application can utilize natural resources from multiple dimensions, play a role in high-efficiency energy saving, and demonstrates functional diversity.
[0007] Preferably, a push plate is slidably disposed inside the water storage tank along the horizontal direction, a driving component is disposed between the water storage tank and the push plate, the lower surface of the push plate abuts against the upper surface of the filter screen, a gap is disposed between the filter screen and the inner wall of the end of the water storage tank, and a second valve is disposed at the bottom of the water storage tank, the second valve being able to connect to the user's irrigation pool.
[0008] By adopting the above technical solution, after the rainwater purification and storage are completed, the drive component controls the push plate to move so that the leaves on the filter screen surface fall into the water storage tank. The leaves are soaked in the remaining rainwater, and after a period of time, they form decomposed organic fertilizer. The corresponding organic fertilizer is then transported to the user's irrigation pool through the second valve, thereby realizing the reuse of the leaves.
[0009] Preferably, the drive assembly includes a drive motor, a first screw, and two meshing transmission gears. The drive motor is mounted on the side wall of the push plate, the first screw is fixed to both ends of the water storage tank, and the first screw is arranged along the length of the water storage tank. One of the transmission gears is coaxially fixed with the output shaft of the drive motor, and the other transmission gear is rotatably supported on the side wall of the push plate and threaded onto the outer wall of the first screw.
[0010] By adopting the above technical solution, the drive motor is started, and the output shaft of the drive motor rotates, thereby driving one of the transmission gears to rotate. Since the other transmission gear is threaded onto the outer wall of the first screw, the transmission gear can undergo relative displacement with the first screw during rotation, thereby driving the push plate to move along the length direction of the first screw.
[0011] Preferably, a cutter is slidably disposed on the side wall of the push plate in the vertical direction, the blade of the cutter abutting against the upper surface of the filter screen, and a first transmission assembly is disposed between the cutter and the drive motor.
[0012] By adopting the above technical solution, under the action of the first transmission component, the cutter moves in the vertical direction, thereby cutting the leaves on the filter screen surface, destroying the leaf tissue and accelerating the leaf decomposition speed.
[0013] Preferably, the first transmission assembly includes a pulley transmission mechanism and a crank-connecting rod mechanism. One pulley of the pulley transmission mechanism is coaxially fixed to the output shaft of the drive motor. The turntable of the crank-connecting rod mechanism is rotatably supported on the side wall of the push plate and is coaxially fixed to the other pulley of the pulley transmission mechanism. One end of the connecting rod of the crank-connecting rod mechanism is rotatably supported on the side wall of the cutter.
[0014] By adopting the above technical solution, when the output shaft of the drive motor rotates, it drives one of the pulleys of the belt pulley transmission mechanism to rotate, so that the turntable of the crank-connecting rod mechanism rotates synchronously, and the connecting rod of the crank-connecting rod mechanism swings, thereby driving the cutter to reciprocate in the vertical direction.
[0015] Preferably, the surface of the solar panel is provided with a plurality of protruding ridges spaced at intervals along the horizontal direction, and a water collection trough is formed between two protruding ridges. A push block is slidably disposed in the water collection trough and slides along the inclined direction of the solar panel. A second transmission component is disposed between the push block and the push plate.
[0016] By adopting the above technical solution, the two protruding ridges form a water collection tank, which can accelerate the flow rate of rainwater on the surface of the solar panel. At the same time, under the action of the second transmission component, the pusher can push the leaves attached to the surface of the solar panel into the water storage tank.
[0017] Preferably, the surface of the protruding ridge is provided with a refractive coating.
[0018] By adopting the above technical solution, since the convex surface is provided with a refractive coating, sunlight at a certain angle can be refracted onto the working area of the solar panel surface, thereby improving the efficiency of sunlight collection.
[0019] Preferably, the second transmission assembly includes a second screw, two meshing bevel gears, a third screw, and a sleeve. The second screw is rotatably supported on the inner wall of the water storage tank and is arranged along the length of the water storage tank. The second screw is threaded through the push plate. One of the bevel gears is coaxially fixed with the second screw. The third screw is rotatably supported on the surface of the solar panel and is coaxially arranged with the other bevel gear. The sleeve is threaded onto the third screw and is fixed to the push block.
[0020] By adopting the above technical solution, while the push plate slides horizontally, the second screw rotates relative to it, thereby causing the two bevel gears to rotate synchronously and drive the third screw to rotate. Since the sleeve is threaded onto the third screw, the sleeve drives the push block to move along the length of the third screw.
[0021] Preferably, a connecting rod is fixed between the plurality of push blocks, and the connecting rod is fixed to the sleeve.
[0022] By adopting the above technical solution, the connecting rod connects multiple push blocks together, making the multiple push blocks more synchronized and easier to control.
[0023] Preferably, a guide rod is fixed to the surface of the solar panel, the guide rod is arranged along the inclined direction of the solar panel, and a guide sleeve is fixed to the side wall of the connecting rod, the guide sleeve being movably sleeved on the guide rod.
[0024] By adopting the above technical solution, the guide sleeve moves along the length of the guide rod, thereby restricting the movement direction of the connecting rod and indirectly improving the movement stability of the push block.
[0025] In summary, this application includes at least one of the following beneficial technical effects: 1. On sunny days, the solar panels can absorb sunlight, which is converted into electrical energy and stored in the battery. At the same time, during cloudy and rainy weather, rainwater falls on the surface of the solar panels and flows into the water storage tank. Large leaves carried by the rainwater are blocked and filtered by the filter screen. The rainwater enters the water storage tank and is purified by turning on the water purifier. The water then flows into the user's water storage tank through the first valve for storage. The energy-saving purification system in this application can utilize natural resources from multiple dimensions, play a role in high-efficiency energy saving, and demonstrates functional diversity. 2. After the rainwater purification and storage are completed, the drive component controls the push plate to move so that the leaves on the filter screen surface fall into the water storage tank. The leaves are soaked in the remaining rainwater and after a period of time, they form decomposed organic fertilizer. The corresponding organic fertilizer is then transported to the user's irrigation pool through the second valve, thereby reusing the leaves. 3. Because the convex surface is coated with a refractive coating, it can refract sunlight at a certain angle onto the working area of the solar panel, thereby improving the efficiency of sunlight collection. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.
[0027] Figure 2 yes Figure 1 An enlarged schematic diagram of part A in the middle.
[0028] Explanation of reference numerals in the attached drawings: 1. Base; 2. Solar panel; 21. Protruding ridge; 22. Water collection tank; 23. Guide rod; 3. Water storage tank; 31. Filter screen; 32. First valve; 33. Second valve; 4. Push plate; 41. Mounting bracket; 42. Guide rod; 5. Drive assembly; 51. Drive motor; 52. First screw; 53. Transmission gear; 6. Cutter; 61. Connecting block; 7. First transmission assembly; 71. Belt pulley transmission mechanism; 72. Crank connecting rod mechanism; 8. Push block; 81. Connecting rod; 811. Guide sleeve; 9. Second transmission assembly; 91. Second screw; 92. Bevel gear; 93. Third screw; 94. Sleeve. Detailed Implementation
[0029] The following is in conjunction with the appendix Figures 1-2 This application will be described in further detail.
[0030] This application discloses a high-efficiency energy-saving purification system. (Refer to...) Figure 1 and Figure 2A high-efficiency energy-saving purification system includes a base 1, which is mounted on the roof of the user's house. The base 1 is rectangular in shape, and a solar panel 2 is mounted on the base 1. The solar panel 2 is tilted downwards from one side of the base 1 to the other. A battery (not shown in the figure) is installed below the solar panel 2 on the upper surface of the base 1. The solar panel 2 is electrically connected to the battery, which stores electrical energy. When necessary, the user can connect the battery to the house's power supply system via a wiring connection to obtain power.
[0031] Furthermore, the surface of the solar panel 2 is provided with a plurality of protruding ridges 21 at intervals along the length direction of the base 1. The protruding ridges 21 are arranged along the length direction of the solar panel 2, and the cross section of the protruding ridges 21 is an isosceles triangle. The surface of the protruding ridges 21 is provided with a refractive coating. In this embodiment, the refractive coating is formed by coating the surface of the protruding ridges 21 with conventional optical refractive materials, which can refract sunlight at a certain angle to the working area of the surface of the solar panel 2, thereby improving the collection efficiency of sunlight.
[0032] On the other hand, a horizontally arranged water storage tank 3 is also mounted on the base 1. The water storage tank 3 is arranged along the length of the base 1 and is located at the bottom end of the solar panel 2. The top of the water storage tank 3 is open, and the edge of the water storage tank 3 connects to the bottom edge of the solar panel 2. Simultaneously, a horizontally arranged filter screen 31 is fixed inside the water storage tank 3. The filter screen 31 is used to filter leaves from rainwater. A water purifier (not shown in the figure) is installed inside the water storage tank 3. In this embodiment, the water purifier is a conventional purification device used in the conventional field, and will not be described in detail here. Furthermore, a first valve 32 is installed at the bottom of the water storage tank 3. The first valve 32 is an electric valve that can connect to the user's water storage tank. In this embodiment, the user's water storage tank corresponds to a commonly used water storage device, and will not be described in detail here.
[0033] Therefore, on sunny days, solar panel 2 absorbs sunlight, which is converted into electrical energy and stored in the battery. Simultaneously, during rainy weather, rainwater falls onto the surface of solar panel 2 and flows into the water storage tank 3. Large leaves carried by the rainwater are filtered by the filter screen 31. The rainwater then enters the water storage tank 3 and is purified by a water purifier before flowing through the first valve 32 into the user's water tank for storage. Correspondingly, utilizing solar energy and rainwater resources achieves zero pollution and low carbon emissions, reducing the impact on the surrounding environment and contributing to environmental protection. Furthermore, the highly efficient energy-saving system utilizing solar energy and rainwater harvesting has multiple advantages, representing an environmentally friendly, sustainable, energy-saving, water-saving, cost-reducing, and energy-efficient reliable solution. Therefore, the energy-saving purification system in this application utilizes natural resources from multiple dimensions, achieving high energy efficiency and demonstrating functional versatility.
[0034] Furthermore, a vertically positioned push plate 4 is slidably disposed horizontally inside the water storage tank 3. Specifically, the push plate 4 slides along the length of the water storage tank 3. A drive assembly 5 is disposed between the water storage tank 3 and the push plate 4, which drives the push plate 4 to move. The two side walls of the push plate 4 contact the two opposite inner walls of the water storage tank 3. Simultaneously, a gap is provided between the filter screen 31 and the inner wall at the end of the water storage tank 3. Two gaps are provided, located at the left and right ends of the filter screen 31 respectively. A second valve 33 is disposed at the bottom of the water storage tank 3, which can connect to the user's irrigation pool. In this embodiment, the second valve 33 is also an electric valve. Correspondingly, the electric valve can be opened and closed according to precise control signals, and the control of fluid flow, pressure, temperature, and other parameters is more accurate and stable compared to manual valve adjustment.
[0035] Specifically, the drive assembly 5 includes a drive motor 51, a first screw 52, and two meshing transmission gears 53. A mounting bracket 41 is fixed to the side wall of the push plate 4. The drive motor 51 is mounted on the mounting bracket 41 on the side wall of the push plate 4. The first screw 52 is fixed to both ends of the water storage tank 3. The first screw 52 is located above the water storage tank 3 and is arranged along the length of the water storage tank 3. One of the transmission gears 53 is coaxially fixed with the output shaft of the drive motor 51, and the other transmission gear 53 is rotatably supported on the side wall of the push plate 4 and threaded onto the outer wall of the first screw 52.
[0036] Therefore, after the rainwater purification and storage are completed, the drive motor 51 is started, and the output shaft of the drive motor 51 rotates, thereby driving one of the transmission gears 53 to rotate. Since the other transmission gear 53 is threaded onto the outer wall of the first screw 52, the transmission gear 53 can be relatively displaced with the first screw 52 during rotation, thereby driving the push plate 4 to move along the length of the first screw 52, so that the leaves on the surface of the filter screen 31 fall into the water storage tank 3. The leaves are soaked in the remaining rainwater, and after a period of time, they form decomposed organic fertilizer. The corresponding organic fertilizer is then transported to the user's irrigation pool through the second valve 33, thereby reusing the leaves.
[0037] Furthermore, since the internal tissues of leaves, when relatively intact, take a long time to decompose when exposed to water, the embodiments of this application also adopt the following solutions to address the above-mentioned problems.
[0038] Specifically, a cutter 6 is slidably mounted on the side wall of the push plate 4 in the vertical direction. There are two cutters 6, which are located on both sides of the push plate 4 respectively. A connecting block 61 is fixed between the two cutters 6. Two guide rods 42 are fixed on the upper surface of the push plate 4 in the vertical direction. The connecting block 61 is slidably mounted between the two guide rods 42 in the vertical direction. The blade of the cutter 6 abuts against the upper surface of the filter screen 31. A first transmission assembly 7 is provided between the cutter 6 and the drive motor 51.
[0039] Correspondingly, the first transmission component 7 includes a pulley transmission mechanism 71 and a crank-connecting rod mechanism 72. One of the pulleys of the pulley transmission mechanism 71 is coaxially fixed to the output shaft of the drive motor 51. The turntable of the crank-connecting rod mechanism 72 is rotatably supported on the side wall of the push plate 4 and is coaxially fixed with the other pulley of the pulley transmission mechanism 71. One end of the connecting rod of the crank-connecting rod mechanism 72 is rotatably supported on the side wall of the cutter 6. When the connection point between the connecting rod of the crank-connecting rod mechanism 72 and the turntable of the crank-connecting rod mechanism 72 is at the lowest point, the blade of the cutter 6 abuts against the upper surface of the filter screen 31. When the connection point between the connecting rod of the crank-connecting rod mechanism 72 and the turntable of the crank-connecting rod mechanism 72 is at the highest point, the cutter 6 is raised to the highest point.
[0040] Therefore, when the output shaft of the drive motor 51 rotates, it drives one of the pulleys of the belt drive mechanism 71 to rotate. Under the transmission belt of the belt drive mechanism 71, the other pulley of the belt drive mechanism 71 rotates. Since the other pulley of the belt drive mechanism 71 is coaxially set with the turntable of the crank-connecting rod mechanism 72, the turntable of the crank-connecting rod mechanism 72 rotates, causing the connecting rod of the crank-connecting rod mechanism 72 to oscillate periodically. Ultimately, the cutter 6 moves repeatedly in the vertical direction, thereby cutting the leaves on the surface of the filter screen 31, destroying the leaf tissue and accelerating the decomposition of the leaves.
[0041] On the other hand, due to rain and wind, some leaves fall onto the surface of the solar panel 2 and adhere to it, obstructing the working area of the solar panel 2. Furthermore, these leaves are not utilized for irrigation. To solve the above problems, the embodiments of this application adopt the following technical solution.
[0042] Specifically, a water collection trough 22 is formed between two adjacent protrusions 21. A push block 8 is slidably disposed within the water collection trough 22 along its length. The cross-sectional shape and size of the push block 8 are adapted to the cross-sectional shape and size of the water collection trough 22, that is, each side wall of the push block 8 abuts against the side wall of the protrusion 21 and the side wall of the solar panel 2, respectively. In addition, a connecting rod 81 is fixed between multiple push blocks 8, that is, the connecting rod 81 connects multiple push blocks 8 into a whole structure, so that the movement of multiple push blocks 8 is more synchronized and easier to control. At the same time, a second transmission component 9 is correspondingly disposed between the connecting rod 81 and the push plate 4.
[0043] Specifically, the second transmission assembly 9 includes a second screw 91, two meshing bevel gears 92, a third screw 93, and a sleeve 94. The second screw 91 is rotatably supported on the inner wall of the water storage tank 3. The second screw 91 is arranged along the length of the water storage tank 3. The second screw 91 is threaded through the push plate 4, that is, the push plate 4 and the second screw 91 are in a threaded fit relationship. One end of the second screw 91 extends out of the outer side of the water storage tank 3. At the same time, one of the bevel gears 92 is coaxially fixed with the second screw 91.
[0044] In addition, the third screw 93 is rotatably supported on the surface of the solar panel 2. The third screw 93 is coaxially arranged with another bevel gear 92. The sleeve 94 is threaded onto the third screw 93 and is fixed to the push block 8.
[0045] Therefore, under the action of the drive component 5, when the push plate 4 slides horizontally, the second screw 91 rotates relative to the push plate 93, thereby causing the two bevel gears 92 to rotate synchronously and drive the third screw 93 to rotate. Since the sleeve 94 is threaded onto the third screw 93, the sleeve 94 drives the push block 8 to move along the length direction of the third screw 93, thereby pushing the leaves attached to the surface of the solar panel 2 and the surface of the protrusion 21 into the water storage tank 3.
[0046] Furthermore, a guide rod 23 is fixed to the surface of the solar panel 2. The guide rod 23 is arranged along the inclined direction of the solar panel 2. A guide sleeve 811 is fixed to the side wall of the connecting rod 81. The guide sleeve 811 is movably sleeved on the guide rod 23.
[0047] Since the guide sleeve 811 moves along the length of the guide rod 23, it restricts the movement direction of the connecting rod 81, so that the push block 8 can only move along the tilt direction of the solar panel 2, thereby indirectly improving the movement stability of the push block 8.
[0048] It should be noted that when the pusher plate 4 moves from one end of the water storage tank 3 to the other end, it pushes the leaves placed on the surface of the filter screen 31 into the water storage tank 3 through the gap. At the same time, the pusher block 8 pushes a new batch of leaves from the solar panel 2 onto the filter screen 31. At this time, the pusher plate 4 resets and sends a new batch of leaves into the water storage tank 3. Since the pusher plate 4 is equipped with cutters 6 on both sides, it can also cut the new batch of leaves. After the pusher plate 4 resets, the pusher block 8 also resets under the action of the third screw 93, thus completing the entire process of cleaning the leaves on the surface of the solar panel 2 and the surface of the ridge 21.
[0049] The implementation principle of a high-efficiency energy-saving purification system in this application embodiment is as follows: On sunny days, solar panel 2 can absorb sunlight, which is converted into electrical energy and stored in the battery. Meanwhile, during cloudy and rainy weather, rainwater falls on the surface of solar panel 2 and flows into water storage tank 3. Large leaves carried by the rainwater are blocked and filtered by filter screen 31. The rainwater enters the water storage tank 3 and is purified by turning on the water purifier. The water then flows into the user's water storage tank through the first valve 32 for storage. The energy-saving purification system in this application can utilize natural resources from multiple dimensions, achieving high energy efficiency and demonstrating functional diversity.
[0050] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A high-efficiency energy-saving purification system, characterized in that: The device includes a base (1), on which a solar panel (2) is mounted. The solar panel (2) is inclined. A battery is located below the solar panel (2). The solar panel (2) is electrically connected to the battery. A water storage tank (3) is also mounted on the base (1). The water storage tank (3) is located at the bottom end of the solar panel (2). A horizontally arranged filter screen (31) is installed inside the water storage tank (3). A water purifier is installed inside the water storage tank (3). A first valve (32) is installed at the bottom of the water storage tank (3). The first valve (32) can connect to the user's water tank.
2. The high-efficiency energy-saving purification system according to claim 1, characterized in that: A push plate (4) is slidably disposed inside the water storage tank (3) in the horizontal direction. A drive assembly (5) is disposed between the water storage tank (3) and the push plate (4). The lower surface of the push plate (4) abuts against the upper surface of the filter screen (31). A gap is provided between the filter screen (31) and the inner wall of the end of the water storage tank (3). A second valve (33) is disposed at the bottom of the water storage tank (3). The second valve (33) can be connected to the user's irrigation pool.
3. The high-efficiency energy-saving purification system according to claim 2, characterized in that: The drive assembly (5) includes a drive motor (51), a first screw (52), and two meshing transmission gears (53). The drive motor (51) is mounted on the side wall of the push plate (4). The first screw (52) is fixed at both ends of the water storage tank (3). The first screw (52) is arranged along the length of the water storage tank (3). One of the transmission gears (53) is coaxially fixed with the output shaft of the drive motor (51). The other transmission gear (53) is rotatably supported on the side wall of the push plate (4) and threaded onto the outer wall of the first screw (52).
4. The high-efficiency energy-saving purification system according to claim 4, characterized in that: A cutter (6) is slidably disposed on the side wall of the push plate (4) in the vertical direction. The blade of the cutter (6) abuts against the upper surface of the filter screen (31). A first transmission assembly (7) is disposed between the cutter (6) and the drive motor (51).
5. The high-efficiency energy-saving purification system according to claim 4, characterized in that: The first transmission assembly (7) includes a pulley transmission mechanism (71) and a crank-connecting rod mechanism (72). One of the pulleys of the pulley transmission mechanism (71) is coaxially fixed to the output shaft of the drive motor (51). The turntable of the crank-connecting rod mechanism (72) is rotatably supported on the side wall of the push plate (4) and coaxially fixed with the other pulley of the pulley transmission mechanism (71). One end of the connecting rod of the crank-connecting rod mechanism (72) is rotatably supported on the side wall of the cutter (6).
6. The high-efficiency energy-saving purification system according to claim 3, characterized in that: The surface of the solar panel (2) is provided with a plurality of protruding ridges (21) spaced apart in the horizontal direction. A water collection trough (22) is formed between two protruding ridges (21). A push block (8) is slidably disposed in the water collection trough (22). The push block (8) slides along the inclined direction of the solar panel (2). A second transmission assembly (9) is disposed between the push block (8) and the push plate (4).
7. The high-efficiency energy-saving purification system according to claim 6, characterized in that: The surface of the protruding ridge (21) is provided with a refractive coating.
8. The high-efficiency energy-saving purification system according to claim 6, characterized in that: The second transmission assembly (9) includes a second screw (91), two meshing bevel gears (92), a third screw (93), and a sleeve (94). The second screw (91) is rotatably supported on the inner wall of the water storage tank (3). The second screw (91) is arranged along the length direction of the water storage tank (3). The second screw (91) is threaded through the push plate (4). One of the bevel gears (92) is coaxially fixed with the second screw (91). The third screw (93) is rotatably supported on the surface of the solar panel (2). The third screw (93) is coaxially arranged with the other bevel gear (92). The sleeve (94) is threadedly sleeved on the third screw (93). The sleeve (94) is fixed with the push block (8).
9. The high-efficiency energy-saving purification system according to claim 7, characterized in that: A connecting rod (81) is fixed between the plurality of push blocks (8), and the connecting rod (81) is fixed to the sleeve (94).
10. The high-efficiency energy-saving purification system according to claim 9, characterized in that: A guide rod (23) is fixed on the surface of the solar panel (2). The guide rod (23) is arranged along the inclined direction of the solar panel (2). A guide sleeve (811) is fixed on the side wall of the connecting rod (81). The guide sleeve (811) is movably sleeved on the guide rod (23).