Solar power generation air water production equipment for waterworks
By introducing an insulation shell, heat recovery, dust collection, and condensation mechanism into the solar air-to-water equipment, the problems of unrecovered waste heat and low efficiency in solid impurity treatment are solved, achieving high-efficiency water production and energy utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-09
- Publication Date
- 2026-04-03
AI Technical Summary
Existing solar-powered air-to-water equipment does not effectively recover waste heat resources, has low efficiency in handling solid impurities during the air pre-cleaning process, and low efficiency in the water vapor condensation process, resulting in low overall energy utilization efficiency and unsatisfactory water production.
It employs an insulation shell, heat recovery mechanism, dust collection mechanism, and condensation mechanism. Through the design of heat-conducting blocks and condensers, it recovers waste heat from solar panels and preheats air. The dust collection mechanism automatically separates solid impurities, and the condenser increases the contact area between the condenser and the air to improve condensation efficiency.
It improves energy efficiency, increases the saturated water vapor content in the air, increases water production and water production efficiency, simplifies the operation process, and reduces maintenance costs.
Smart Images

Figure CN121781657A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of air-to-water equipment, and particularly relates to a solar-powered air-to-water equipment for waterworks. Background Technology
[0002] Air-to-water technology is an innovative solution for extracting moisture from the air through physical or chemical methods. It works by cooling air to condense water vapor into liquid water. The main structure includes an air filtration system, a condensation module, and a water treatment unit. The water production process involves air purification, condensation, and deep purification. Air purification filters dust, bacteria, and other impurities; condensation extracts moisture from the air; and deep purification removes heavy metals and other harmful substances. Air-to-water technology does not rely on traditional water sources and can solve drinking water problems in water-scarce areas such as deserts or islands. Furthermore, the quality of the water produced by air-to-water technology can reach aerospace-grade standards. Air-to-water technology is widely used for emergency water production in homes or outdoors, freshwater supply for military bases on islands or ocean-going vessels, and ensuring safe drinking water in extreme environments such as those affected by nuclear contamination. As an emerging water resource acquisition method, air-to-water technology has attracted widespread attention. In municipal water supply sectors such as waterworks, the combination of solar power generation and air-to-water technology is considered one of the ideal paths to achieving green water production. Solar photovoltaic panels generate a large amount of waste heat during power generation, causing the panel temperature to rise and reducing power generation efficiency. Existing solar air-to-water equipment cannot effectively utilize this waste heat. Secondly, the temperature of the air entering the water production system directly affects its saturated moisture content. Unheated air has limited moisture-carrying capacity, resulting in reduced condensate production. At the same time, ambient air contains solid impurities such as dust, which can contaminate key components if directly entering the water production system, affecting the long-term stable operation of the equipment and water quality safety. Existing solar air-to-water equipment has a low degree of automation, and the accumulation of impurities requires frequent shutdowns for cleaning, which not only increases maintenance costs but also affects the continuity of production. Furthermore, the existing solar air-to-water equipment has a limited effective contact area between the condenser structure and the air, limiting the capture and condensation efficiency of water vapor. Condensate is difficult to collect and guide quickly, and some condensed water droplets may re-evaporate or remain, resulting in an unsatisfactory water collection rate. Summary of the Invention
[0003] The purpose of this invention is to solve the problems of low energy utilization efficiency, low efficiency of solid impurity treatment in the air pre-cleaning stage, and low efficiency of water vapor condensation in existing solar air-to-water equipment, which are caused by the ineffective recovery of waste heat resources. Therefore, this invention proposes a solar-powered air-to-water equipment for waterworks.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: The system includes an insulation shell with multiple solar panels arranged around its top along an axis, a filter tube connected to its bottom, a heat recovery mechanism including a heat-conducting block on one side of the outer wall of the solar panels, and multiple heat-absorbing grooves on one side of the outer wall of the heat-conducting block to increase the contact area between the heat-conducting block and the hot air, allowing the heat-conducting block to conduct more heat, a dust collection mechanism including a dust collection shell connected to the bottom of the filter tube, multiple guide plates on the inner wall of the dust collection shell, and two support plates between the multiple guide plates, the top outer wall of the support plates being sloped so that dust falls and collects between the two guide plates, and a condensation mechanism including a mounting base located below the dust collection shell, multiple receiving grooves on the outer wall of the mounting base, and a condenser inside the receiving groove to condense and collect moisture in the air.
[0005] As a further description of the above technical solution: A heat-conducting pipe is embedded in the outer wall of one side of the heat-conducting block, and multiple connecting seats are connected to the top of the heat-insulating shell, with one end of the heat-conducting pipe passing through the connecting seat.
[0006] As a further description of the above technical solution: The outer side of the insulation shell is wrapped with a heat insulation tube. The outer wall of the heat insulation tube is connected to one end of the heat conduction tube. One end of the heat insulation tube passes through the outer wall of the insulation shell, and the end of the heat insulation tube that passes through the outer wall of the insulation shell is connected to a heat release block.
[0007] As a further description of the above technical solution: Two support blocks are connected to the bottom of the support plate, and a connecting rod is connected to the bottom of the support blocks. An installation plate is connected to the inner wall of the dust collection shell, and a rotating plate is connected to the outer wall of one side of the connecting rod. The rotating plate is rotatably connected to the installation plate through a column, and a rotating rod is connected to one end of the column.
[0008] As a further description of the above technical solution: A movable rod is provided on one side of the mounting plate, and a sliding groove is provided at the bottom end of the movable rod. A sliding rod is connected to one side of the mounting plate, and the outer wall of the sliding rod is slidably connected to the inner wall of the sliding groove.
[0009] As a further description of the above technical solution: The top of the movable rod is U-shaped, and a column is provided on one side of the rotating rod. The outer wall of the column is in contact with the inner wall of the U-shape at the top of the movable rod. A limit rod is connected to the outer wall of one side of the mounting plate, and the limit rod is located on one side of the movable rod.
[0010] As a further description of the above technical solution: Rotating seats are rotatably connected to the outer wall of one side of the rotating rod and the outer wall of one side of the moving rod. A sleeve rod is connected between the two rotating seats. A spring is provided on the outside of the sleeve rod. The two ends of the spring are respectively connected to the corresponding positions on the outer wall of the rotating seat at both ends of the sleeve rod.
[0011] As a further description of the above technical solution: An eddy current generator is installed inside the top of the filter tube, and a sealing shell is installed outside the filter tube. The top of the sealing shell is connected to the bottom of the insulation shell.
[0012] As a further description of the above technical solution: Two condensation grooves are provided on the outer walls of both sides of the condenser plate, and the cross-sectional shape of the accommodating groove is hexagonal.
[0013] As a further description of the above technical solution: Multiple fans are arranged around the top of the insulation shell along the axis, and a base plate is connected to the bottom of the mounting base.
[0014] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are: 1. In this invention, by setting up a heat recovery mechanism, the waste heat generated during solar panel power generation is captured and recovered, and the heat is transported through pipelines and released by the heat release block, so that the heat is stored in the heat insulation shell. The heat stored in the heat insulation shell is used to preheat the drawn-in air. On the one hand, the heat recovery reduces energy consumption and improves energy utilization. On the other hand, preheating the air can increase the saturated water vapor content of the air, so that more water molecules can be quickly extracted in the condensation stage, thereby increasing water production and improving production efficiency.
[0015] 2. In this invention, by setting up a dust collection mechanism, the solid impurities separated during the pre-cleaning of the air can gather at the center of the top of the support plate. When the solid impurities gather to a certain amount, they separate from the support plate by their own gravity, causing the solid impurities to fall automatically to the bottom of the dust collection shell. After collection, the support plate automatically resets, realizing the automatic collection of solid impurities after separation and improving work efficiency.
[0016] 3. In this invention, by setting a condensation mechanism, the condenser is composed of multiple plates, and condensation grooves are additionally opened on both sides of the plates, which greatly increases the contact area between the condensation plates and the hot air, improves the water production efficiency, and at the same time, the water vapor in the air is condensed and converges to the center of the condensation groove and flows down along the condensation groove, thereby realizing the guidance of condensate and simplifying the operation. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the main structure of a solar-powered air-to-water generator for a waterworks, as proposed in this invention. Figure 2 This is a schematic diagram showing the disassembled structure of a solar-powered air-to-water generator for a waterworks, as proposed in this invention. Figure 3 This is a partial half-sectional schematic diagram of the heat recovery mechanism of a solar-powered air-to-water generator for a waterworks, as proposed in this invention. Figure 4 For the present invention Figure 3 A magnified structural diagram of part A in the middle; Figure 5 This is a schematic diagram of a half-section of the filter pipe portion of a solar-powered air-to-water generator for a waterworks, as proposed in this invention. Figure 6 This is a half-sectional structural diagram of the dust collection mechanism of a solar-powered air-to-water generator for a waterworks, as proposed in this invention. Figure 7 For the present invention Figure 6 A magnified structural diagram of part B in the middle section; Figure 8 This is a half-sectional structural diagram of the condensation mechanism of a solar-powered air-to-water generator for a waterworks, as proposed in this invention. Figure 9 For the present invention Figure 8 A magnified structural diagram of section C.
[0018] Legend: 1. Insulation shell; 2. Filter tube; 3. Eddy current generator; 4. Solar panel; 5. Heat recovery mechanism; 501. Heat-conducting block; 502. Heat absorption tank; 503. Heat-conducting pipe; 504. Connecting seat; 505. Heat insulation pipe; 506. Heat release block; 6. Fan; 7. Sealing shell; 8. Dust collection mechanism; 801. Dust collection shell; 802. Guide plate; 803. Mounting plate; 804. Support plate; 805. Support block; 806. Connecting rod; 807. Rotating plate; 808. Rotating rod; 809. Moving rod; 810. Slide groove; 811. Slide rod; 812. Rotating seat; 813. Sleeve rod; 814. Spring; 815. Limiting rod; 9. Condensation mechanism; 901. Mounting seat; 902. Base plate; 903. Receiving groove; 904. Condenser; 905. Condensation tank. Detailed Implementation
[0019] 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.
[0020] Please see Figures 1-4This invention provides a technical solution comprising: a heat-insulating shell 1, with multiple solar panels 4 arranged around the top of the heat-insulating shell 1 along an axis, a filter pipe 2 connected to the bottom of the heat-insulating shell 1, a heat recovery mechanism 5, the heat recovery mechanism 5 including a heat-conducting block 501 disposed on one side of the outer wall of the solar panels 4, with multiple heat-absorbing grooves 502 formed on one side of the outer wall of the heat-conducting block 501, increasing the contact area between the heat-conducting block 501 and the hot air through the heat-absorbing grooves 502, allowing the heat-conducting block 501 to conduct more heat, and a dust collection mechanism 8, the dust collection mechanism 8 including a filter pipe 2 connected to the bottom end of the filter pipe 2. The dust collection shell 801 has multiple guide plates 802 on its inner wall and two support plates 804 between them. The top outer wall of the support plates 804 is configured as an incline so that dust falls and accumulates between the two guide plates 802. The condensation mechanism 9 includes a mounting base 901 located below the dust collection shell 801. The outer wall of the mounting base 901 has multiple receiving grooves 903. A condenser 904 is installed in each receiving groove 903 to condense and collect moisture in the air.
[0021] A heat-conducting pipe 503 is embedded in the outer wall of one side of the heat-conducting block 501, and multiple connecting seats 504 are connected to the top of the insulation shell 1. One end of the heat-conducting pipe 503 passes through the connecting seat 504.
[0022] A heat insulation tube 505 is coiled around the outside of the heat insulation shell 1. The outer wall of the heat insulation tube 505 is connected to one end of the heat conduction tube 503. One end of the heat insulation tube 505 passes through the outer wall of the heat insulation shell 1. A heat release block 506 is connected to the end of the heat insulation tube 505 that passes through the outer wall of the heat insulation shell 1.
[0023] Specifically, the solar panel 4 generates heat during solar power generation, which dissipates into the surrounding air. A heat-conducting block 501 is located on the back side of the solar panel 4. The side of the heat-conducting block 501 with the heat-absorbing groove 502 is in contact with the solar panel 4. The heat-conducting block 501 is made of copper. Some heat is transferred from the solar panel 4 to the heat-conducting block 501 through direct contact with the solar panel 4. The heat-absorbing groove 502 significantly increases the contact area between the heat-conducting block 501 and the hot air near the solar panel 4, allowing some of the heat from the air to be transferred to the heat-conducting block 501. The heat is also transferred inside the heat pipe 503 and the insulation pipe 505. All parts are filled with coolant. The heat-conducting block 501 transfers heat along the direction of the heat-conducting pipe 503 to the heat insulation pipe 505 through the coolant. The heat insulation pipe 505 can prevent heat from escaping from the pipe. The heat-releasing block 506 is set inside the heat insulation shell 1. The heat-releasing block 506 is made of copper. Multiple grooves are opened around the outer wall of the heat-releasing block 506 along the axis, which greatly increases the contact area between the heat-releasing block 506 and the internal environment of the heat insulation shell 1, releasing the heat in the heat insulation pipe 505 into the heat insulation shell 1. The fan 6 draws outside air into the heat insulation shell 1. The outside air is heated inside the heat insulation shell 1, increasing the saturated water vapor content in the air, which is convenient for extraction in the subsequent condensation stage.
[0024] It should be noted that the selection of the fan 6 and the control unit in the above description should be selected as needed. This part is well-known technology in the field and will not be elaborated here.
[0025] It should be noted that, in the above description, solar panel 4 is the core component of photovoltaic power generation. Solar panel 4 directly converts solar radiation energy into electrical energy through semiconductor materials. When sunlight shines on the surface of semiconductor materials, photons excite electron transitions to form an electric current. This part is a well-known technology in the field and will not be described in detail here.
[0026] It should be noted that copper, as mentioned above, has high thermal conductivity and is often used in scenarios requiring rapid heat conduction. This part is well-known technology in the field and will not be elaborated upon here.
[0027] The bottom of the support plate 804 is connected to two support blocks 805. The bottom of the support block 805 is connected to a connecting rod 806. The inner wall of the dust collection shell 801 is connected to an installation plate 803. The outer wall of one side of the connecting rod 806 is connected to a rotating plate 807. The rotating plate 807 is rotatably connected to the installation plate 803 through a column, and a rotating rod 808 is connected to one end of the column.
[0028] A movable rod 809 is provided on one side of the mounting plate 803. A sliding groove 810 is provided at the bottom of the movable rod 809. A sliding rod 811 is connected to one side of the mounting plate 803. The outer wall of the sliding rod 811 is slidably connected to the inner wall of the sliding groove 810.
[0029] The top of the movable rod 809 is U-shaped, and a column is provided on one side of the rotating rod 808. The outer wall of the column is in contact with the inner wall of the U-shape at the top of the movable rod 809. A limit rod 815 is connected to the outer wall of one side of the mounting plate 803. The limit rod 815 is located on one side of the movable rod 809.
[0030] Rotating seats 812 are rotatably connected to the outer wall of one side of the rotating rod 808 and the outer wall of one side of the moving rod 809. A sleeve rod 813 is connected between the two rotating seats 812. A spring 814 is provided on the outside of the sleeve rod 813. The two ends of the spring 814 are respectively connected to the corresponding positions on the outer wall of one side of the rotating seat 812 at both ends of the sleeve rod 813.
[0031] Please see Figures 5-7 , as stated.
[0032] Specifically, preheated air is delivered by fan 6 into filter tube 2. The airflow passes through vortex generator 3 installed inside the top of filter tube 2. Vortex generator 3 causes the airflow to generate vortices, thus generating outward centrifugal force. Air passes normally through the filter holes of filter tube 2, while solid impurities in the air are thrown outward by centrifugal force and intercepted by filter tube 2. After being intercepted, the solid impurities fall downward onto the surface of guide plate 802. The solid impurities fall along the surface of guide plate 802 to the top of support plate 804. The top of support plate 804 is set as an inclined surface, and the inclined surface is inclined towards the contact position of the two support plates 804. Solid impurities accumulate along the inclined surface of support plate 804 towards the contact position of the two support plates 804. In the initial state, spring 814 maintains the relative fixed position of rotating rod 808 and mounting plate 803 through elastic force. When a certain amount of solid impurities accumulate, the weight of the solid impurities exceeds the support of the elastic force of spring 814. At the threshold, the side of the two support plates 804 in contact with each other is pressed down, causing the rotating plate 807 to rotate around the bottom column as the axis. The rotation of the rotating plate 807 drives the rotating rod 808 to rotate, and the spring 814 is compressed. One end of the rotating rod 808 presses down on the U-shaped end of the moving rod 809 through the column, causing the moving rod 809 to descend. The sliding rod 811 slides from the bottom end of the slide groove 810 to the top end of the slide groove 810. The limiting rod 815 holds the rotating rod 808 to prevent it from rotating excessively. The contact sides of the two support plates 804 separate and move away from each other, opening the bottom of the dust collection shell 801. Solid impurities fall into the bottom space of the dust collection shell 801. After the solid impurities are collected, the spring 814 is released. The spring 814 pushes the rotating rod 808 back to its original position through its elastic force. The sliding rod 811 returns to the bottom end of the slide groove 810, and the two support plates 804 also reset, closing the bottom space of the dust collection shell 801.
[0033] A vortex generator 3 is installed inside the top of the filter tube 2, and a sealing shell 7 is installed outside the filter tube 2. The top of the sealing shell 7 is connected to the bottom of the insulation shell 1.
[0034] Two condensing grooves 905 are opened on both sides of the outer wall of the condenser 904 plate, and the cross-sectional shape of the receiving groove 903 is hexagonal.
[0035] Multiple fans 6 are arranged around the top of the insulation shell 1 along the axis, and the bottom of the mounting base 901 is connected to the base plate 902.
[0036] Please see Figures 8-9 , as stated.
[0037] Specifically, the receiving groove 903 on the outer wall of the mounting base 901 has a hexagonal cross-section and is arranged around the axis of the mounting base 901, which has higher strength and rigidity. The condenser 904 is composed of 12 plates equidistantly arranged along the axis. The bottom of the condenser 904 is connected to the base plate 902, which is connected to the external cooling system, so that the condenser plate always maintains a relatively low temperature. Two condensation grooves 905 are opened on both sides of the condenser plate, which greatly increases the contact area between the condenser plate and the high-temperature air and improves the condensation efficiency. When the high-temperature airflow blows over the plate, the water vapor in the high-temperature air condenses to form small water droplets. The cross-section of the condensation groove 905 is arc-shaped, and the condensed water droplets converge towards the center of the arc of the condensation groove 905. When the condensed water accumulates to a certain amount, it automatically slides down the plate, realizing air-to-water conversion.
[0038] It should be noted that the external cooling system described above uses an air-cooled condenser 904 with a serpentine tube structure, which achieves refrigerant vapor condensation through airflow. This part is a well-known technology in the field and will not be described in detail here.
[0039] Working Principle: During use, the operator fixes the mounting base 901 onto the base plate 902. Then, the operator aligns the condenser 904 with the receiving groove 903 and inserts the condenser 904 into the receiving groove 903, ensuring the bottom of the condenser 904 contacts the base plate 902. Next, the operator places the sealing shell 7 over the mounting base 901, completing the setup of the condensing mechanism 9. Then, the operator installs the vortex generator 3 inside the top of the filter tube 2, aligns the filter tube 2 with the bottom opening of the insulation shell 1, and connects them. The dust collection mechanism 8 is then installed at the bottom of the filter tube 2. Finally, the filter tube 2 and the dust collection mechanism 8 are inserted into the sealing shell 7, connecting the bottom of the insulation shell 1 to the top of the sealing shell 7 to seal the sealing shell 7, completing the connection of the main body of the equipment. Finally, the operator installs the solar panel 4 on one side of the heat-conducting block 501. The entire system is set up outdoors to facilitate photovoltaic power generation by the solar panels 4. Multiple devices are set up together to form a system. When the solar panels 4 generate electricity, they will produce a lot of heat. The heat is collected by the heat-conducting block 501 of the heat recovery mechanism 5 and enters the heat insulation pipe 505 along the heat-conducting pipe 503. It is then released into the insulation shell 1 by the heat-releasing block 506 connected to one end of the heat insulation pipe 505. The fan 6 draws outside air into the insulation shell 1. The insulation shell 1 preheats the air with internal heat. The fan 6 pushes the high-temperature air downward and passes through the vortex separator 3 to separate solid impurities. The separated solid impurities are collected by the dust collection mechanism 8. The high-temperature air continues to move to the condensation mechanism 9. The high-temperature air comes into contact with the low-temperature condenser 904 and condenses. The water vapor in the air condenses into water droplets and collects and flows down. The staff collects the condensate to complete the water production.
[0040] In this invention, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance; the term "multiple" refers to two or more unless otherwise explicitly defined. The terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; "linking" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0041] It is important to note that the constructions and arrangements of this application shown in several different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who consult this disclosure will readily understand that many modifications are possible (e.g., changes in the size, dimensions, structure, shape, and proportions of various elements, as well as parameter values (e.g., temperature, pressure, etc.), mounting arrangements, use of materials, color, orientation, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in this application). For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of elements may be inverted or otherwise altered, and the nature or number or position of discrete elements may be changed or altered. Therefore, all such modifications are intended to be included within the scope of the invention. The order or sequence of any process or method steps may be changed or rearranged according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure described herein that performs the function, and not only structurally equivalent but also equivalent in structure. Other substitutions, modifications, alterations, and omissions may be made in the design, operation, and arrangement of the exemplary embodiments without departing from the scope of the invention. Therefore, the present invention is not limited to the specific embodiments, but extends to various modifications that still fall within the scope of the appended claims.
Claims
1. A solar-powered air-to-water generator for a waterworks, characterized in that, include: The heat insulation shell (1) has multiple solar panels (4) arranged around its top along the axis, and a filter pipe (2) is connected to its bottom. The heat recovery mechanism (5) includes a heat-conducting block (501) disposed on the outer wall of one side of the solar panel (4). The outer wall of the heat-conducting block (501) is provided with multiple heat-absorbing grooves (502). The heat-absorbing grooves (502) increase the contact area between the heat-conducting block (501) and the hot air, so that the heat-conducting block (501) can conduct more heat. The dust collection mechanism (8) includes a dust collection shell (801) connected to the bottom end of the filter tube (2). The inner wall of the dust collection shell (801) is provided with a plurality of guide plates (802). Two support plates (804) are provided between the plurality of guide plates (802). The top outer wall of the support plate (804) is configured as an inclined surface so that when dust falls, it accumulates between the two guide plates (802) along the inclined surface. The condensing mechanism (9) includes a mounting base (901) located below the dust collection shell (801). The outer wall of the mounting base (901) is provided with a plurality of receiving slots (903). A condenser (904) is provided in the receiving slots (903) to condense and collect moisture in the air.
2. The solar-powered air-to-water generator for a waterworks according to claim 1, characterized in that, A heat-conducting pipe (503) is embedded in the outer wall of one side of the heat-conducting block (501), and a plurality of connecting seats (504) are connected to the top of the heat-insulating shell (1). One end of the heat-conducting pipe (503) passes through the connecting seat (504).
3. The solar-powered air-to-water generator for a waterworks according to claim 1, characterized in that, The heat insulation shell (1) is surrounded by a heat insulation tube (505). The outer wall of the heat insulation tube (505) is connected to one end of the heat conduction tube (503). One end of the heat insulation tube (505) passes through the outer wall of the heat insulation shell (1). The end of the heat insulation tube (505) that passes through the outer wall of the heat insulation shell (1) is connected to a heat release block (506).
4. A solar-powered air-to-water generator for a waterworks according to claim 1, characterized in that, The bottom of the support plate (804) is connected to two support blocks (805), the bottom of the support blocks (805) is connected to a connecting rod (806), the inner wall of the dust collection shell (801) is connected to an installation plate (803), the outer wall of one side of the connecting rod (806) is connected to a rotating plate (807), the rotating plate (807) is rotatably connected to the installation plate (803) through a column, and one end of the column is connected to a rotating rod (808).
5. A solar-powered air-to-water generator for a waterworks according to claim 4, characterized in that, A movable rod (809) is provided on one side of the mounting plate (803), and a sliding groove (810) is provided at the bottom end of the movable rod (809). A sliding rod (811) is connected to one side of the mounting plate (803), and the outer wall of the sliding rod (811) is slidably connected to the inner wall of the sliding groove (810).
6. A solar-powered air-to-water generator for a waterworks according to claim 5, characterized in that, The top of the movable rod (809) is U-shaped, and a column is provided on one side of the rotating rod (808), with the outer wall of the column fitting against the inner wall of the U-shape at the top of the movable rod (809). A limiting rod (815) is connected to the outer wall of one side of the mounting plate (803), and the limiting rod (815) is located on one side of the movable rod (809).
7. A solar-powered air-to-water generator for a waterworks according to claim 6, characterized in that, Rotating seats (812) are rotatably connected to the outer wall of one side of the rotating rod (808) and the outer wall of one side of the moving rod (809). A sleeve rod (813) is connected between the two rotating seats (812). A spring (814) is provided on the outside of the sleeve rod (813). The two ends of the spring (814) are respectively connected to the corresponding positions on the outer wall of one side of the rotating seat (812) at both ends of the sleeve rod (813).
8. A solar-powered air-to-water generator for a waterworks according to claim 1, characterized in that, The filter tube (2) has an internal vortex generator (3) at the top and a sealing shell (7) on the outside. The top of the sealing shell (7) is connected to the bottom of the heat insulation shell (1).
9. A solar-powered air-to-water generator for a waterworks according to claim 1, characterized in that, The outer walls of both sides of the condenser (904) plate have two condensation grooves (905), and the cross-sectional shape of the receiving groove (903) is hexagonal.
10. A solar-powered air-to-water generator for a waterworks according to claim 1, characterized in that, The top of the insulation shell (1) is surrounded by multiple fans (6) along the axis, and the bottom of the mounting base (901) is connected to a base plate (902).