Water lifting equipment based on green power source

By combining solar photovoltaic and wind power structures, and utilizing photovoltaic modules to store electrical energy and wind turbine blades to convert wind energy, the problem of low transmission efficiency in traditional well pumping devices under different environmental conditions has been solved. This has enabled continuous rotation of the support shaft and stable water pumping operations, improving energy efficiency and environmental adaptability.

CN224214316UActive Publication Date: 2026-05-08新疆新水科美环保科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
新疆新水科美环保科技有限公司
Filing Date
2025-05-22
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Traditional well pumping devices rely on grid power for operation, resulting in high energy consumption, poor environmental adaptability, low transmission efficiency, and difficulty in achieving stable and continuous operation, especially for deep well pumping.

Method used

It adopts a solar photovoltaic and wind power structure. The photovoltaic modules absorb solar energy and store it as electrical energy. The drive motor provides power when wind energy is insufficient. Combined with the meshing transmission of rotating bevel gear and drive bevel gear, the support shaft can be rotated continuously. The wind turbine blades and photovoltaic panels provide power support when wind and solar energy are insufficient.

Benefits of technology

It enables continuous rotation of the support shaft under different environmental conditions, improves the stability and efficiency of water lifting operations, reduces energy consumption, and enhances the utilization efficiency of wind and solar energy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses water lifting equipment based on a green power source, and relates to the technical field of water lifting. The plurality of water guide frames are distributed and fixedly arranged on the outer wall of the steel wire belt at equal intervals; the drainage frame penetrates through the rear side of the well lid; the supporting block is arranged on the right side of the water well, and the supporting shaft penetrates through the supporting block in a screwed mode through a bearing. The rotating bevel gear is sleeved and fixed on the supporting shaft; the driving bevel gear is meshed with the front side of the rotating bevel gear; the movable supporting block is slidably arranged on the ground through the sliding rail. A photovoltaic module is arranged on the upper side of the vertical end of the support frame; the solar photovoltaic structure is additionally arranged on one side of the water well, light energy is absorbed and converted into electric energy to be stored, driving is provided for rotation of the supporting shaft, the supporting shaft can meet the rotation requirement when needing to be used, and continuous operation is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of water lifting technology, specifically to a water lifting device based on a green power source. Background Technology

[0002] Traditional well pumping devices mostly rely on grid power, resulting in high energy costs, poor environmental adaptability, and electrical safety issues. A wind-powered water pumping device disclosed in patent publication CN203067181U includes "a wind energy conversion component, a gearbox, a power output shaft, a coupling, a winding roller, and a winding rope. The wind energy conversion component is connected to one end of the gearbox, the power output shaft is connected to the other end of the gearbox, the winding roller is connected to the power output shaft via the coupling, and the winding rope is wound around the winding roller. In actual use, the lower end of the winding rope is connected to a water bucket." This patent discloses using wind power to drive the output shaft to rotate, providing transmission for water pumping. However, the water pumping equipment in this patent suffers from low transmission efficiency, particularly lacking adaptability to deep well pumping conditions, making it difficult to achieve stable and continuous water pumping operations. Utility Model Content

[0003] The purpose of this utility model is to address the shortcomings and deficiencies of existing technologies by providing a water lifting device based on a green power source that is simple in structure, reasonably designed, and easy to use. A solar photovoltaic and wind power structure is added next to the well to absorb and convert light and wind energy into electrical energy for storage, which drives the rotation of the support shaft, enabling the support shaft to meet the rotation requirements when needed, thus achieving continuous operation.

[0004] To achieve the above objectives, this utility model adopts the following technical solution: it includes a support shaft, a transmission pulley, a well cover on the upper side of the well, a support shaft passing through one side of the well cover, a wind vane at the outer end of the support shaft, a transmission pulley at the inner end of the support shaft, a bottom pulley at the lower side of the transmission pulley, the bottom pulley being mounted on a load-bearing hammer, and the bottom pulley and the transmission pulley being connected by a steel wire transmission connection; it also includes:

[0005] A water guide frame, wherein there are several water guide frames, which are evenly distributed and fixedly installed on the outer wall of the steel wire;

[0006] A drainage frame, wherein the drainage frame is disposed through the rear side of the manhole cover;

[0007] A support block is provided on the right side of the well. The support block is fixedly installed on the ground, and the support shaft is screwed into the support block through a bearing.

[0008] A rotating bevel gear is fitted onto and fixed to the support shaft;

[0009] A drive bevel gear, wherein the drive bevel gear is meshed on the front side of the rotating bevel gear;

[0010] The movable support block is slidably mounted on the ground via a sliding rail and is located on the front side of the drive bevel gear. A drive motor is fixedly mounted on the front side of the movable support block via a motor bracket. The output shaft of the drive motor passes through the movable support block and is located on the rear side of the movable support block. The drive bevel gear is sleeved and fixed on the output shaft of the drive motor.

[0011] A fixed block is provided on the front side of the movable support block and is fixedly placed on the ground.

[0012] A driving component is disposed between a fixed block and a movable support block;

[0013] A support frame is fixedly installed on the front side of the fixing block. The support frame has an "L" shaped structure, and a photovoltaic module is installed on the upper side of the vertical end of the support frame.

[0014] The wind turbine blades are mounted on the support shaft and are located on the right side of the wind vane. Both the wind turbine blades and the photovoltaic modules are connected to the control box on the ground.

[0015] Through the above technical solution design, the photovoltaic panels in the photovoltaic module absorb sunlight and convert it into electrical energy for storage. When there is no wind, the stored electrical energy powers the drive motor, which moves by moving the drive bevel gear. The drive bevel gear meshes with the bevel gear to rotate, thereby driving the support shaft to continue rotating, thus realizing continuous water lifting operation.

[0016] As a further improvement of this utility model, the driving component includes:

[0017] The drive motor is fixedly mounted on the rear side of the fixed block by a motor bracket; the output shaft of the drive motor passes through the fixed block and is equipped with a drive gear.

[0018] Two rotating gears are respectively meshed on the left and right sides of the transmission gear; a rotating shaft is inserted and fixed inside the rotating gear, and the rotating shaft is screwed through the fixed block by a bearing and is provided with a threaded rod;

[0019] The threaded tubes are two in number, each being threadedly fitted onto a corresponding threaded rod, and the rear end of the threaded tube is connected to a movable support block.

[0020] Through the above technical solution design, the transmission motor drives the transmission gear to rotate, which in turn drives the rotating gear to rotate, thereby causing the threaded rod to rotate. The threaded drive causes the threaded tube to move, thereby adjusting the movable support block, and causing the drive bevel gear to transmit power to the rotating bevel gear.

[0021] As a further improvement of this utility model, a baffle is provided on the upper side of the fixed block. The baffle is an inverted "L" shaped structure. The vertical end of the baffle is located in front of the rotating gear. The bottom of the horizontal end of the baffle is symmetrically fixed with an insert block, which is inserted into a slot opened on the upper side of the fixed block.

[0022] The above technical solution design shields the rotating gear and transmission gear.

[0023] As a further improvement of this utility model, several limiting blocks are evenly distributed around the outer circumference of the upper end of the well, and the limiting blocks are arc-shaped and fixedly installed on the ground; the well cover is fitted onto the upper end of the well, and the outer ring wall of the well cover is in contact with the limiting blocks; a threaded post is threaded through the limiting block by a threaded connection, and a boss is provided at the inner end of the threaded post, and the boss is inserted into the well cover;

[0024] Through the above technical solution design, the limiting block guides the manhole cover, and the rotating threaded column drives the boss to move and insert into the manhole cover, thereby strengthening the stability of the manhole cover.

[0025] As a further improvement of this utility model, the drainage frame is composed of a water guiding section and a drainage section. The water guiding section is embedded and fixed in the rear side wall of the manhole cover, and the drainage section is fixedly set on the rear side of the water guiding section, and the inner bottom surface of the rear side of the water guiding section is lower than the inner bottom surface of the front side.

[0026] Through the above technical solution design, the rotation of the steel wire belt causes the water in the water guide frame to pour out in a pouring pattern, enter the water guide section, and be discharged from the drainage section.

[0027] Compared with the prior art, the beneficial effects of this utility model are:

[0028] 1. Install solar photovoltaic structures on the ground to store electrical energy and provide power for the rotation of the support shaft;

[0029] 2. A rotating bevel gear is installed on the support shaft. When the wind vane rotates under the action of wind, the drive bevel gear moves away from the rotating bevel gear and does not affect the rotation of the support shaft. Only when the wind vane rotates without the action of wind does it drive the drive bevel gear to move, thereby engaging the rotating bevel gear and driving the support shaft to rotate continuously, thus achieving the purpose of continuous water lifting operation.

[0030] 3. Add a water guide frame to the outer wall of the steel wire. During the transmission process, the steel wire drives the water guide frame to move, thereby moving the water. When the steel wire drives the water guide frame to rotate and flip, the water guide frame is in a pouring mode, allowing the water to be discharged from the drain frame. Attached Figure Description

[0031] Figure 1 This is a schematic diagram of the structure of this utility model.

[0032] Figure 2 yes Figure 1 A schematic diagram of the southeast isometric structure.

[0033] Figure 3 This is a schematic diagram of the internal structure of this utility model.

[0034] Figure 4 yes Figure 2 Enlarged view of part A.

[0035] Figure 5 This is a schematic diagram of the connection structure between the manhole cover and the limiting block in this utility model.

[0036] Figure 6 This is a schematic diagram of the connection structure of the fixing block and the baffle in this utility model.

[0037] Explanation of reference numerals in the attached figures:

[0038] 1. Support shaft; 2. Well; 3. Well cover; 4. Wind vane; 5. Load-bearing hammer; 6. Steel wire rope; 7. Water guide frame; 8. Drainage frame; 9. Water guide section 8-1; 10. Drainage section 8-2; 11. Support block; 12. Ground; 13. Rotating bevel gear; 14. Drive bevel gear; 15. Movable support block; 16. Drive motor; 17. Fixed block; 18. Drive assembly; 19. Transmission motor 10-1; Transmission gear 10-2; Rotating gear 10-3; 10. Threaded rod; 11. Threaded pipe; 12. Support frame; 13. Photovoltaic module; 14. Baffle; 25. Insert block; 26. Limiting block; 27. Threaded column; 28. Boss; 29. ​​Wind turbine blade; 20. Control box. Detailed Implementation

[0039] The technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings. The preferred embodiments described are only examples. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0040] Example 1:

[0041] Please see Figures 1-6This embodiment includes a support shaft 1, a transmission pulley, and several limiting blocks 21 are evenly distributed around the outer circumference of the upper end of the well 2. The limiting blocks 21 are arc-shaped and fixedly mounted on the ground 10. A well cover 3 is fitted onto the upper end of the well 2, and the outer ring wall of the well cover 3 is in contact with the limiting blocks 21. A threaded post 22 is threaded through the limiting block 21, and a boss 23 is provided at the inner end of the threaded post 22, which is inserted into the well cover 3. A support shaft 1 is threaded through one side of the well cover 3. A wind vane 4 is provided at the outer end of the support shaft 1, and a transmission pulley is provided at the inner end of the support shaft 1. A bottom pulley is provided below the transmission pulley, and the bottom pulley is mounted on a load-bearing hammer 5. The bottom pulley and the transmission pulley are connected by a steel wire 6. It also includes:

[0042] Water guide frame 7, wherein there are several water guide frames 7, which are evenly distributed and fixedly installed on the outer wall of the steel wire 6;

[0043] A drainage frame 8 is provided through the rear side of the manhole cover 3. The drainage frame 8 is composed of a water guiding section 8-1 and a drainage section 8-2. The water guiding section 8-1 is embedded and fixed in the rear side wall of the manhole cover 3, and the drainage section 8-2 is fixedly provided on the rear side of the water guiding section 8-1. The rear inner bottom surface of the water guiding section 8-1 is lower than the front inner bottom surface.

[0044] Support block 9 is located on the right side of the well 2 and is fixedly mounted on the ground 10. Support shaft 1 is screwed into the support block 9 via a bearing.

[0045] Rotate the bevel gear 11, which is sleeved and fixed on the support shaft 1;

[0046] A drive bevel gear 12 is meshed with the front side of the rotating bevel gear 11;

[0047] The movable support block 13 is slidably mounted on the ground 10 via a sliding rail and is located in front of the drive bevel gear 12. A drive motor 14 is fixedly mounted on the front of the movable support block 13 via a motor bracket. The specific model of the drive motor 14 is purchased and installed directly from the market according to actual usage requirements. The output shaft of the drive motor 14 passes through the movable support block 13 and is located on the rear side of the movable support block 13. The drive bevel gear 12 is sleeved and fixed on the output shaft of the drive motor 14.

[0048] Fixed block 15, the fixed block 15 is disposed on the front side of the movable support block 13, and the fixed block 15 is fixedly disposed on the ground 10;

[0049] Drive component 16, wherein the drive component 16 is disposed between the fixed block 15 and the movable support block 13;

[0050] The support frame 17 is fixedly installed on the front side of the fixing block 15. The support frame 17 is configured with an "L" shape. A photovoltaic module 18 is installed on the upper side of the vertical end of the support frame 17.

[0051] Wind turbine blade 24 is mounted on support shaft 1 and is located on the right side of wind vane 4. Both wind turbine blade 24 and photovoltaic module 18 are connected to control box 25 on ground 10.

[0052] Through the above technical solution design, the photovoltaic panel in the photovoltaic module 18 absorbs sunlight and converts it into electrical energy for storage; when there is no wind, the stored electrical energy powers the drive motor 14, which moves by moving the drive bevel gear 12, causing the drive bevel gear 12 to mesh with and rotate the bevel gear 11, thereby driving the support shaft 1 to continue rotating, thus realizing continuous water lifting operation.

[0053] Example 2:

[0054] Please see Figures 1-6 Based on Embodiment 1, the driving component 16 is further improved and includes:

[0055] The drive motor 16-1 is fixedly mounted on the rear side of the fixing block 15 via a motor bracket; the specific model of the drive motor 16-1 is purchased directly from the market and installed according to actual usage requirements; after the output shaft of the drive motor 16-1 passes through the fixing block 15, a drive gear 16-2 is provided.

[0056] Two rotating gears 16-3 are respectively meshed on the left and right sides of the transmission gear 16-2. A rotating shaft is inserted and fixed inside the rotating gear 16-3. The rotating shaft passes through the fixed block 15 through the bearing and is provided with a threaded rod 16-4. A stop 19 is provided on the upper side of the fixed block 15. The stop 19 is an inverted "L" shaped structure. The vertical end of the stop 19 is located on the front side of the rotating gear 16-3. The bottom of the horizontal end of the stop 19 is symmetrically fixed with insert blocks 20, which are inserted into the slots opened on the upper side of the fixed block 15.

[0057] Threaded tube 16-5, there are two threaded tubes 16-5, which are respectively threaded and sleeved on the corresponding threaded rod 16-4, and the rear end of the threaded tube 16-5 is connected to the movable support block 13.

[0058] Through the above technical solution design, the transmission motor 16-1 drives the transmission gear 16-2 to rotate, which in turn drives the rotating gear 16-3 to rotate, thereby causing the threaded rod 16-4 to rotate. The threaded drive causes the threaded tube 16-5 to move, thereby adjusting the movable support block 13, and causing the drive bevel gear 12 to drive the rotating bevel gear 11.

[0059] In using this utility model, the photovoltaic panel in the photovoltaic module 18 absorbs sunlight and converts it into electrical energy for storage. The wind turbine blade 24 drives the wind turbine blades to rotate, converting the kinetic energy of the wind into mechanical energy, which is then converted into electrical energy by a generator. The solar panels, controller, and inverter of the photovoltaic module 18 are disclosed technologies for converting light energy into electrical energy through photoelectric conversion. The wind turbine blade 24, generator, and control system are wind power generation principles and will not be described further. When there is wind, the wind vane 4 rotates, causing the support shaft 1 to rotate. The water inside the well 2 is transmitted through the steel cable 6 and flows out from the drainage frame 8. At this time, the drive bevel gear 12 moves away from the rotating bevel gear. Wheel 11, and wind turbine blades 24 rotate to convert and store wind energy; when there is no wind, in addition to the wind energy stored driving the support shaft 1, the electrical energy stored in the photovoltaic module 18 powers the drive motor 14, drives the bevel gear 12 to rotate, and starts the transmission motor 16-1 to drive the transmission gear 16-2 to rotate, meshing with the rotating gear 16-3 to rotate, causing the threaded rod 16-4 to rotate, and through the threaded drive, the threaded tube 16-5 to move, thereby adjusting the movable support block 13, causing the drive bevel gear 12 to move, until the drive bevel gear 12 meshes with the rotating bevel gear 11 to drive the support shaft 1, causing the support shaft 1 to continue rotating, thus realizing continuous water lifting operation.

[0060] Compared with the prior art, the beneficial effects of this utility model are:

[0061] 1. Install a solar photovoltaic structure on the ground 10 to store electrical energy and provide power for the rotation of the support shaft 1;

[0062] 2. A rotating bevel gear 11 is installed on the support shaft 1. When the wind vane 4 rotates under the action of wind, the drive bevel gear 12 moves away from the rotating bevel gear 11 and does not affect the rotation of the support shaft 1. Only when the wind vane 4 rotates without the action of wind, it drives the drive bevel gear 12 to move, thereby engaging the rotating bevel gear 11 to drive the support shaft 1, so as to achieve the purpose of continuous rotation of the support shaft 1, and thus achieve the purpose of continuous water lifting operation.

[0063] 3. Add a water guide frame 7 to the outer wall of the steel wire 6. During the transmission process, the steel wire 6 drives the water guide frame 7 to move, thereby driving the water to move. When the steel wire 6 drives the water guide frame 7 to rotate and flip, the water guide frame 7 is in the pouring mode, so that the water is discharged from the drain frame 8.

[0064] 4. In addition to the wind vane 4 on the support shaft 1, wind turbine blades 24 are also installed to convert and store wind energy, thereby improving the utilization of wind energy and enhancing the power supply effect.

[0065] For those skilled in the art, modifications can be made to the technical solutions described in the foregoing embodiments, and equivalent substitutions can be made to some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A water lifting device based on a green power source, comprising a support shaft (1) and a transmission pulley, a well cover (3) is provided on the upper side of a well (2), a support shaft (1) is provided on one side of the well cover (3), a wind vane (4) is provided on the outer end of the support shaft (1), a transmission pulley is provided on the inner end of the support shaft (1), a bottom pulley is provided on the lower side of the transmission pulley, the bottom pulley is provided on a load-bearing hammer (5), and the bottom pulley and the transmission pulley are connected by a steel wire (6); Its features are, It also includes: Water guide frame (7), there are several water guide frames (7), which are evenly distributed and fixed on the outer wall of the steel wire (6); A drainage frame (8) is provided through the rear side of the manhole cover (3); Support block (9), the support block (9) is set on the right side of the well (2), the support block (9) is fixedly set on the ground (10), and the support shaft (1) is screwed into the support block (9) through the bearing; Rotate the bevel gear (11), which is sleeved and fixed on the support shaft (1); A drive bevel gear (12) is meshed with the front side of the rotating bevel gear (11); The movable support block (13) is slidably mounted on the ground (10) via a sliding rail, and is located on the front side of the drive bevel gear (12). A drive motor (14) is fixedly mounted on the front side of the movable support block (13) via a motor bracket. The output shaft of the drive motor (14) passes through the movable support block (13) and is located on the rear side of the movable support block (13). The drive bevel gear (12) is sleeved and fixed on the output shaft of the drive motor (14). Fixed block (15), the fixed block (15) is set on the front side of the movable support block (13), and the fixed block (15) is fixedly set on the ground (10); A drive component (16) is disposed between a fixed block (15) and a movable support block (13); Support frame (17), the support frame (17) is fixedly installed on the front side of the fixing block (15), the support frame (17) is set in an "L" shape, and a photovoltaic module (18) is set on the upper side of the vertical end of the support frame (17). Wind turbine blade (24), the wind turbine blade (24) is set on the support shaft (1) and the wind turbine blade (24) is set on the right side of the wind vane (4). The wind turbine blade (24) and the photovoltaic module (18) are respectively connected to the control box (25) on the ground (10).

2. The water lifting device based on a green power source according to claim 1, characterized in that: The driving component (16) includes: The drive motor (16-1) is fixedly mounted on the rear side of the fixing block (15) by a motor bracket; the output shaft of the drive motor (16-1) passes through the fixing block (15) and is provided with a drive gear (16-2). Two rotating gears (16-3) are respectively meshed on the left and right sides of the transmission gear (16-2); a rotating shaft is inserted and fixed inside the rotating gear (16-3), and the rotating shaft passes through the fixed block (15) through the bearing and is provided with a threaded rod (16-4). The threaded tube (16-5) consists of two parts, which are respectively threaded and fitted onto the corresponding threaded rod (16-4) by threaded connection, and the rear end of the threaded tube (16-5) is connected to the movable support block (13).

3. The water lifting device based on a green power source according to claim 1, characterized in that: The upper side of the fixed block (15) is provided with a baffle (19), which is an inverted "L" shaped structure. The vertical end of the baffle (19) is located in front of the rotating gear (16-3). The bottom of the horizontal end of the baffle (19) is symmetrically fixed with a plug (20), and the plug (20) is inserted into the slot opened on the upper side of the fixed block (15).

4. A water lifting device based on a green power source according to claim 1, characterized in that: The upper outer circumference of the well (2) is provided with several limiting blocks (21) at equal angles, and the limiting blocks (21) are arc-shaped. The limiting blocks (21) are fixed on the ground (10). The well cover (3) is fitted on the upper end of the well (2), and the outer ring wall of the well cover (3) is in contact with the limiting blocks (21). The limiting blocks (21) are threaded with threaded posts (22) through threaded connection. The inner end of the threaded posts (22) is provided with a boss (23), and the boss (23) is inserted into the well cover (3).

5. A water lifting device based on a green power source according to claim 1, characterized in that: The drainage frame (8) consists of a water guiding section (8-1) and a drainage section (8-2). The water guiding section (8-1) is embedded and fixed inside the rear side wall of the manhole cover (3). The drainage section (8-2) is fixedly set on the rear side of the water guiding section (8-1), and the rear inner bottom surface of the water guiding section (8-1) is lower than the front inner bottom surface.

Citation Information

Patent Citations

  • Wind energy water lifting device

    CN203067181U