Water resource recycling structure for peach tree planting

By designing a pre-embedded water storage tank and a dustproof cover system controlled by raindrop sensors in peach tree planting, efficient collection and storage of rainwater has been achieved, solving the problem of rainwater loss in peach tree planting in arid and low-rainfall areas, saving water resources and reducing dependence on external water supply.

CN224395666UActive Publication Date: 2026-06-23ANYANG XINGHE ECOLOGICAL AGRICULTURE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ANYANG XINGHE ECOLOGICAL AGRICULTURE CO LTD
Filing Date
2025-06-24
Publication Date
2026-06-23

AI Technical Summary

Technical Problem

In arid and rain-scarce regions, the lack of rainwater harvesting and reuse facilities in peach tree cultivation leads to rainwater loss, increasing dependence on and waste of external water sources.

Method used

A water resource recycling structure was designed, which includes a pre-embedded water storage tank, a water inlet chamber, a water receiving extension, a recycling pipe, a raindrop sensor, and a solar photovoltaic system. The raindrop sensor controls an electric telescopic rod to open the dust cover, collect rainwater, and store it in the water storage tank. The solar power system ensures the normal operation of the equipment.

Benefits of technology

It achieves efficient collection and storage of rainwater, reduces external water supply pressure, saves water resources, prevents wind and sand blockage, and ensures the normal operation of rainwater recycling.

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Abstract

The utility model discloses a water resource recovery structure for peach tree planting relates to water resource recovery equipment technical field, including pre -buried water storage jar, the top opening of pre -buried water storage jar is assembled with the jar cover, the surface ring of pre -buried water storage jar is provided with a plurality of water inlet cavities, the surface fixed sleeve of water inlet cavity has the water receiving extension, the surface communication of pre -buried water storage jar has a plurality of recovery pipes, the water inlet cavity and recovery pipe are communicated through the pipeline, the top of water receiving extension is symmetrically hinged with the dustproof cover, both ends of dustproof cover all are hinged with the connecting block, the utility model discloses the surface assembly of water inlet cavity has the water receiving extension, can collect the rainwater of rainy day, make it through the recovery pipe and be transported to the inside of pre -buried water storage jar, collect the rainwater in the inside of pre -buried water storage jar and store, to facilitate the rainwater of storage can be used for the irrigation when subsequent peach tree planting, alleviates the external water supply pressure, saves water resources.
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Description

Technical Field

[0001] This utility model relates to the technical field of water resource recycling equipment, specifically a water resource recycling structure for peach tree planting. Background Technology

[0002] Globally, arid and low-rainfall areas are widely distributed. These regions face problems such as water scarcity and fragile ecological environments. Traditional agriculture is limited under such conditions and it is difficult to achieve ideal economic benefits. However, fruit tree planting is gradually showing unique advantages in arid and low-rainfall areas.

[0003] On the one hand, fruit trees have high economic value, and their fruits can be converted into economic benefits through various means such as fresh consumption and processing, bringing considerable income to the local area. On the other hand, fruit trees have significant ecological benefits. Their developed root systems can fix the soil, prevent soil erosion, play a role in windbreak and sand fixation, and conserve water resources, which helps to improve the ecological environment and maintain biodiversity.

[0004] In practice, regions like Gansu and Ningxia Hui Autonomous Region in Northwest China have successfully achieved large-scale planting of fruit trees such as peaches by adopting measures such as selecting drought-resistant varieties, improving soil conditions, using water-saving irrigation technologies, and mulching to conserve moisture. These measures have yielded good economic and ecological benefits, providing a model for the development of fruit tree planting in arid and rain-scarce areas.

[0005] Currently, in practice, there are no devices for recycling and reusing rainwater. When planting peach trees, rainwater cannot be recycled for subsequent irrigation. All irrigation water comes from the external water supply system, which is heavily dependent on groundwater and tap water. Rainwater is a natural freshwater resource. If it is not recycled and reused, a large amount of rainwater will be lost directly after rainfall, resulting in a waste of water resources and increasing the burden on other limited external water sources. Utility Model Content

[0006] The purpose of this utility model is to provide a water resource recycling structure for peach tree planting, so as to solve the problems mentioned in the background art.

[0007] To solve the above-mentioned technical problems, the present invention provides the following technical solution: including a pre-embedded water storage tank, wherein the top opening of the pre-embedded water storage tank is fitted with a tank cover;

[0008] The surface of the pre-embedded water storage tank is provided with multiple water inlet chambers in a ring shape. The surface of each water inlet chamber is fixedly fitted with a water receiving edge. The surface of the pre-embedded water storage tank is connected to multiple recovery pipes. The water inlet chambers and the recovery pipes are connected by a pipeline.

[0009] The top of the water-receiving edge is symmetrically hinged with a dust cover plate, and both ends of the dust cover plate are hinged with connecting blocks. The other end of the connecting block is hinged with an electric telescopic rod fixed to the bottom of the water-receiving edge. Both ends of the water-receiving edge are equipped with raindrop sensors, and the bottom of the water-receiving edge is symmetrically equipped with a controller.

[0010] In a further embodiment, a solar photovoltaic panel is symmetrically mounted on the top of the dust cover, and an electrical control box that works in conjunction with the solar photovoltaic panel is fixedly connected to the bottom of the water-receiving edge.

[0011] In a further embodiment, an energy storage power supply is fixedly connected inside the electrical control box, a charging controller for use with the energy storage power supply is installed inside the electrical control box, and an inverter for use with the electric telescopic rod is installed inside the electrical control box.

[0012] In a further embodiment, both ends of the bottom of the water-receiving edge are fixedly connected to waterproof cover plates, and the raindrop sensor is fixedly connected to the waterproof cover plates.

[0013] In a further embodiment, the surface of the water inlet cavity is fitted with a support base for contacting the support platform.

[0014] In a further embodiment, a pump mounting hole is provided on the top of the can lid.

[0015] Compared with the prior art, the beneficial effects of this utility model are:

[0016] This utility model has a water-receiving extension on the surface of the water inlet cavity, which can collect rainwater on rainy days and transport it through a recycling pipe to the inside of a pre-buried water storage tank. The rainwater is collected and stored in the pre-buried water storage tank so that it can be used for irrigation when planting peach trees later, reducing the pressure on the external water supply and saving water resources.

[0017] This invention uses a dust cover to seal the water inlet chamber. When the rain sensor detects rainwater, it transmits the data to the controller. The controller then controls the electric telescopic rod to flip the dust cover over the top of the water-receiving edge, allowing rainwater to smoothly enter the water inlet chamber. This prevents external wind and sand from entering the water inlet chamber during dry periods, which could clog the recovery pipe and ensure normal rainwater recovery. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of an embodiment of the present utility model;

[0019] Figure 2 This is a schematic diagram of the pre-embedded water storage tank according to an embodiment of the present utility model;

[0020] Figure 3This is a schematic diagram of the can lid according to an embodiment of the present utility model;

[0021] Figure 4 This is a partial structural schematic diagram of an embodiment of the present utility model;

[0022] Figure 5 This is a partial top view of an embodiment of the present utility model;

[0023] Figure 6 This is an embodiment of the present utility model. Figure 1 Enlarged view of point A in the middle;

[0024] Figure 7 This is a cross-sectional view of the electrical control box according to an embodiment of the present utility model.

[0025] In the diagram: 1. Pre-embedded water storage tank; 2. Tank cover; 3. Water inlet chamber; 4. Water receiving edge; 5. Recycling pipe; 6. Dustproof cover; 7. Connecting block; 8. Electric telescopic rod; 9. Raindrop sensor; 10. Controller; 11. Solar photovoltaic panel; 12. Electrical control box; 13. Energy storage power supply; 14. Charging controller; 15. Inverter; 16. Waterproof cover; 17. Support base; 18. Pump mounting hole. Detailed Implementation

[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0027] This embodiment discloses a water resource recycling structure for peach tree planting, including a pre-buried water storage tank 1. The top opening of the pre-buried water storage tank 1 is fitted with a tank cover 2, and the top of the tank cover 2 has a pump mounting hole 18. Figure 1 , Figure 2 and Figure 3 As shown, the pre-buried water storage tank 1 is a pre-buried type, which needs to be buried underground in advance when in use. The pre-buried water storage tank 1 does not need to be completely buried underground; a part of it is above ground for subsequent pipeline installation. The pre-buried water storage tank 1 can be made of wear-resistant and corrosion-resistant plastic or stainless steel to improve durability. The tank cover 2 is preferably fixed to the top of the pre-buried water storage tank 1 by snap-fit ​​or bolt-fit to cover the top opening of the pre-buried water storage tank 1 and prevent wind and sand from entering. The pump mounting hole 18 is used for the installation of an external water pump. The input end of the water pump passes through the pump mounting hole 18 to penetrate the interior of the pre-buried water storage tank 1 for pumping water from the interior of the pre-buried water storage tank 1.

[0028] The surface of the pre-embedded water storage tank 1 is annularly arranged with multiple water inlet chambers 3. Water receiving extensions 4 are fixedly sleeved on the surface of each water inlet chamber 3. Multiple recovery pipes 5 are connected to the surface of the pre-embedded water storage tank 1. The water inlet chambers 3 and the recovery pipes 5 are connected by pipes. A support base 17 for contacting the support platform is fitted to the surface of the water inlet chamber 3. Figure 1 , Figure 4 , Figure 5 and Figure 6 As shown, the water inlet chamber 3 is installed on the support platform via the support base 17. The support platform can be the ground. The water receiving edge 4 is located on the surface of the water inlet chamber 3 to increase the contact area of ​​the water inlet chamber 3, so that more rainwater can enter the interior of the water inlet chamber 3 when it rains. The recovery pipe 5 is connected to the bottom of the water inlet chamber 3 through a pipe. The recovery pipe 5 is at a certain inclination at the bottom of the water inlet chamber 3. The other end of the recovery pipe 5 is connected to the pre-buried water storage tank 1. The recovery pipe 5 at the pre-buried water storage tank 1 is lower than the recovery pipe 5 at the bottom of the water inlet chamber 3, so that the water inside the water inlet chamber 3 can smoothly enter the interior of the pre-buried water storage tank 1 to complete the recovery operation. After the pre-buried water storage tank 1 is pre-buried, the exposed height is sufficient for the installation of the recovery pipe 5.

[0029] A dust cover 6 is symmetrically hinged to the top of the water-receiving edge 4. Connecting blocks 7 are hinged to both ends of the dust cover 6. An electric telescopic rod 8, fixed to the bottom of the water-receiving edge 4, is hinged to the other end of each connecting block 7. Raindrop sensors 9 are installed at both ends of the water-receiving edge 4. A controller 10 is symmetrically mounted at the bottom of the water-receiving edge 4. Waterproof covers 16 are fixed to both ends of the bottom of the water-receiving edge 4. Raindrop sensors 9 are fixedly connected to the waterproof covers 16. Figure 1 , Figure 4 and Figure 6As shown, each water-receiving edge 4 has two dustproof covers 6 at its top, which are hinged to the water-receiving edge 4. An electric telescopic rod 8 is mounted at the bottom of the water-receiving edge 4, providing the power source for flipping the dustproof covers 6. A connecting block 7 is hinged between the dustproof covers 6 and the output end of the electric telescopic rod 8. When the output end of the electric telescopic rod 8 extends, the connecting block 7 lifts and flips the dustproof covers 6 around the hinge point with the water-receiving edge 4, opening the two dustproof covers 6 at the top of the water-receiving edge 4, allowing rainwater to smoothly enter the water inlet chamber 3. When the two dustproof covers 6 are closed, they seal the top of the water-receiving edge 4. This prevents external wind and sand from entering the water inlet chamber 3. The waterproof cover plate 16 is designed at both ends of the bottom of the water-receiving edge 4 to protect the electric telescopic rod 8 and prevent rainwater from contacting it. The raindrop sensor 9 is installed on the waterproof cover plate 16. The raindrop sensor 9 can sense whether it is raining in the external environment and transmit the data to the controller 10. The controller 10 controls the operation of the electric telescopic rod 8. When it rains, the controller 10 controls the extension end of the electric telescopic rod 8 to extend and open the two dustproof covers 6. When it is not raining, the electric telescopic rod 8 retracts and the two dustproof covers 6 are closed at the top of the water-receiving edge 4.

[0030] The top of the dust cover 6 is symmetrically equipped with solar photovoltaic panels 11. The bottom of the water-receiving edge 4 is fixedly connected to an electrical control box 12 that works with the solar photovoltaic panels 11. An energy storage power supply 13 is fixedly connected inside the electrical control box 12. A charging controller 14 that works with the energy storage power supply 13 is also installed inside the electrical control box 12. An inverter 15 that works with the electric telescopic rod 8 is also installed inside the electrical control box 12. Figure 1 , Figure 4 , Figure 6 and Figure 7 As shown, the solar photovoltaic panel 11 is installed on top of the dust cover 6 to receive external solar energy. The energy storage battery inside the electrical control box 12 is used to store electrical energy and can provide power to the electric telescopic pole 8 and other electrical equipment. The charging controller 14 is located inside the electrical control box 12 and is used to regulate the charging current and voltage of the solar photovoltaic panel 11 to the energy storage battery and to protect the charging of the energy storage battery. The inverter 15 is used to convert the DC power inside the energy storage battery into AC power and supply it to the electrical equipment on the device to ensure the normal operation of the entire device.

[0031] It should be noted that parts have a lifespan and can be replaced during regular maintenance when they no longer meet performance requirements. Deterioration in performance due to prolonged use of parts is not a design defect of this application.

[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A water resource recovery structure for peach tree cultivation, comprising a pre-buried water storage tank (1), characterized in that: The top opening of the pre-embedded water storage tank (1) is fitted with a tank cover (2). The surface of the pre-embedded water storage tank (1) is provided with multiple water inlet chambers (3) in a ring shape. The surface of the water inlet chamber (3) is fixedly sleeved with a water receiving extension edge (4). The surface of the pre-embedded water storage tank (1) is connected to multiple recovery pipes (5). The water inlet chamber (3) and the recovery pipes (5) are connected by a pipeline. The top of the water-receiving edge (4) is symmetrically hinged with a dust cover (6), and both ends of the dust cover (6) are hinged with a connecting block (7). The other end of the connecting block (7) is hinged with an electric telescopic rod (8) fixed to the bottom of the water-receiving edge (4). Both ends of the water-receiving edge (4) are equipped with raindrop sensors (9), and the bottom of the water-receiving edge (4) is symmetrically equipped with a controller (10).

2. The water resource recycling structure for peach tree cultivation according to claim 1, characterized in that: The top of the dust cover (6) is symmetrically equipped with a solar photovoltaic panel (11), and the bottom of the water-receiving extension (4) is fixedly connected with an electrical control box (12) that works in conjunction with the solar photovoltaic panel (11).

3. The water resource recycling structure for peach tree cultivation according to claim 2, characterized in that: The electrical control box (12) is internally fixed with an energy storage power supply (13), and the electrical control box (12) is internally equipped with a charging controller (14) that works in conjunction with the energy storage power supply (13). The electrical control box (12) is internally equipped with an inverter (15) that works in conjunction with the electric telescopic rod (8).

4. The water resource recycling structure for peach tree cultivation according to claim 1, characterized in that: Both ends of the bottom of the water-receiving edge (4) are fixed with waterproof cover plates (16), and the raindrop sensor (9) is fixedly connected to the waterproof cover plate (16).

5. The water resource recycling structure for peach tree cultivation according to claim 1, characterized in that: The surface of the water inlet cavity (3) is fitted with a support seat (17) for contacting the support platform.

6. The water resource recycling structure for peach tree cultivation according to claim 1, characterized in that: The top of the can cover (2) is provided with a pump mounting hole (18).