Water collection irrigation device for economic herbaceous plant planting of photovoltaic power station
By designing a photovoltaic power station water collection irrigation device with supporting columns, screws, bases, soil moisture sensors and other components, the problem that the equipment cannot adapt to changes in vegetation density is solved, and flexible installation and efficient irrigation are achieved.
Patent Information
- Application Number
- CN202422066973.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-08-23
AI Technical Summary
The existing water collection irrigation equipment for herb planting in photovoltaic power stations cannot be installed according to the vegetation planting density, resulting in reduced flexibility and convenience in the equipment.
A device including support columns, screws, bases, soil moisture sensors, water collection frames, water inlet pipes, outlet pipes, shunt pipes, sub-pipes and sprinklers is designed. Soil moisture is monitored through soil moisture sensors, and automatic irrigation is achieved using rainwater collection and water pump systems. The sub-pipes can be flexibly installed and disassembled according to vegetation density.
It improves the flexibility and convenience of the equipment, can adapt to the needs of vegetation planting at different densities, and realizes rainwater collection and efficient irrigation of herbs.
Smart Images

Figure CN223231756U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of agricultural irrigation, in particular to a water collection irrigation device for planting economic herbaceous plants in a photovoltaic power station. Background Art
[0002] Photovoltaic power stations, also known as solar photovoltaic power stations, are power generation facilities that use solar panels to directly convert sunlight into electrical energy. Photovoltaic power stations can be large-scale centralized power stations or small-scale distributed systems. They are widely used in residential, commercial, industrial, agricultural and other fields. The water collection and irrigation system that combines photovoltaic power stations with the cultivation of economic herbaceous plants is an innovative agricultural photovoltaic model. It fully utilizes solar power generation while also achieving efficient use of water resources and sustainable production of crops.
[0003] Existing photovoltaic power stations use water collection for herbaceous plant irrigation, usually by introducing water into a water collection tank and then spraying the water out through a single pipe for irrigation. The current equipment cannot install nozzles according to the density of vegetation planting, cannot adapt to the vegetation irrigation needs in different situations, and is relatively inconvenient to operate, resulting in reduced flexibility and convenience of equipment use.
[0004] Therefore, it is necessary to design a photovoltaic power station economic herbaceous plant planting water collection and irrigation device that can install the auxiliary pipe according to the vegetation planting conditions, adapt to the irrigation needs of vegetation planting at different densities, facilitate the disassembly and installation of the auxiliary pipe, and improve the flexibility and convenience of use. Utility Model Content
[0005] In order to overcome the shortcomings of current equipment that nozzles cannot be installed according to the density of vegetation planting, cannot adapt to the vegetation irrigation needs under different situations, and are inconvenient to operate, thereby reducing the flexibility and convenience of equipment use, the utility model provides a photovoltaic power station economic herb plant planting water collection and irrigation device that can install auxiliary pipes according to vegetation planting conditions, facilitates adaptation to the irrigation needs of vegetation planting under different densities, facilitates the disassembly and installation of auxiliary pipes, and improves the flexibility and convenience of use.
[0006] The technical implementation plan of the utility model is: a water collection and irrigation device for planting economic herbaceous plants in a photovoltaic power station, including a support column, a screw, a base, a soil moisture sensor, a water collection frame, a water inlet pipe, a collecting bottle, a water outlet pipe, a diversion pipe, an auxiliary pipe and a nozzle. The support column is provided with two left and right columns, the outer sides of the upper parts of the support columns are connected to the screws through threads, the lower parts of the support columns are connected to the bases, the lower sides of the middle parts of the bases are connected to the soil moisture sensors, the water collection frames are slidably connected between the upper parts of the support columns, the screws are in contact with the water collection frames, the lower side of the left part of the water collection frame is connected to the water inlet pipe, the collecting bottle is placed on the ground, the collecting bottle is located on the front side of the left support column, the collecting bottle is connected to the tail end of the water inlet pipe, the upper middle side of the collecting bottle is connected to the water outlet pipe, the tail end of the water outlet pipe is connected to the diversion pipe, the right part of the diversion pipe is connected with a plurality of auxiliary pipes by clip connection, and a plurality of nozzles are connected to the auxiliary pipes.
[0007] Optionally, a handle is provided on the outside of the screw.
[0008] Optionally, a plurality of fixing nails are provided on the base.
[0009] Optionally, a filter is also included, and the filter is connected to the inner side of the upper left part of the water collecting frame.
[0010] Optionally, a water pump is further included, and the right part of the water outlet pipe is connected to the water pump.
[0011] Optionally, it also includes connecting joints, baffles and springs. Multiple connecting joints are connected to the right side of the shunt pipe. The connecting joints are all in contact with adjacent auxiliary pipes. Baffles are slidably connected to the connecting joints. The baffles are connected to the adjacent connecting joints by two front and rear springs.
[0012] The beneficial effects of the present invention are as follows: 1. The present invention picks up the auxiliary pipe by hand, so that the auxiliary pipe contacts the connecting joint, and then moves the auxiliary pipe to clamp the shunt pipe, so that the auxiliary pipe contacts the baffle, and then moves the baffle to install the auxiliary pipe. Therefore, the auxiliary pipe can be installed according to the vegetation planting situation, which is convenient for adapting to the irrigation needs of vegetation planting at different densities, facilitates the disassembly and installation of the auxiliary pipe, and improves the flexibility and convenience of use.
[0013] 2. The utility model allows rainwater to fall along the photovoltaic panels and flow into the water collection frame, so that the water flows from the water pipe into the collection bottle for collection, and is introduced into the outlet pipe by a water pump, and then flows into the diversion pipe and the auxiliary pipe, so that the water is sprayed out from the nozzle for irrigation, thereby being able to collect rainwater, facilitating water storage, and automatically irrigating herbaceous plants, thereby improving irrigation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 This is a schematic diagram of the first three-dimensional structure of the utility model.
[0015] Figure 2This is a schematic diagram of the second three-dimensional structure of the present invention.
[0016] Figure 3 This is a schematic diagram of the first partial three-dimensional structure of the utility model.
[0017] Figure 4 This is a schematic diagram of the second partial three-dimensional structure of the utility model.
[0018] The numbers in the figure are: 1-support column, 2-screw, 3-base, 4-soil moisture sensor, 5-water collecting frame, 6-filter, 7-water inlet pipe, 8-collecting bottle, 9-water outlet pipe, 10-water pump, 11-diversion pipe, 12-auxiliary pipe, 13-sprinkler, 14-connecting joint, 15-blocking piece, 16-spring. DETAILED DESCRIPTION
[0019] The following further illustrates the technical solution with reference to specific embodiments. It should be noted that terms such as "up," "down," "left," and "right" used herein to indicate directions refer only to the positions of the structures depicted in the corresponding drawings. Component numbers, such as "first" and "second," are used solely to distinguish the components being described and do not convey any sequential or technical meaning. References to "connected" and "coupled" in this application, unless otherwise specified, include both direct and indirect connections (couplings).
[0020] A water collection and irrigation device for growing economical herbaceous plants in a photovoltaic power station, such as Figure 1-Figure 4As shown, it includes a support column 1, a screw 2, a base 3, a soil moisture sensor 4, a water collecting frame 5, a filter 6, a water inlet pipe 7, a collecting bottle 8, a water outlet pipe 9, a water pump 10, a diversion pipe 11, an auxiliary pipe 12, a nozzle 13, a connecting joint 14, a baffle 15 and a spring 16. The support column 1 is provided with two on the left and right sides. The outer side of the upper part of the support column 1 is connected to the screw 2 through a thread. The outer side of the screw 2 is provided with a handle for easy hand-holding and rotation of the screw 2. The lower part of the support column 1 is connected to the base 3. Three fixing nails are provided on the base 3 for easy fixation. The lower side of the middle part of the base 3 is connected to the soil moisture sensor 4. The water collecting frame 5 is slidably connected between the upper parts of the support columns 1. The screw 2 is in contact with the water collecting frame 5. The inner side of the upper left part of the water collecting frame 5 is connected to The filter screen 6 is convenient for filtering impurities. The lower left side of the water collecting frame 5 is connected to the water inlet pipe 7. The collecting bottle 8 is placed on the ground. The collecting bottle 8 is located on the front side of the left support column 1. The collecting bottle 8 is connected to the tail end of the water inlet pipe 7. The upper middle side of the collecting bottle 8 is connected to the water outlet pipe 9. The right side of the water outlet pipe 9 is connected to a water pump 10 to facilitate the control of water in and out. The tail end of the water outlet pipe 9 is connected to a diversion pipe 11. The right side of the diversion pipe 11 is connected to nine auxiliary pipes 12, and eight nozzles 13 are connected to the auxiliary pipes 12. Nine connecting joints 14 are connected to the right side of the diversion pipe 11. The connecting joints 14 are all in contact with adjacent auxiliary pipes 12. Baffles 15 are slidably connected to the connecting joints 14, and two front and rear springs 16 are connected between the baffles 15 and the adjacent connecting joints 14.
[0021] When the photovoltaic power station needs to collect water for economic herbaceous plant cultivation, the device can be used. The device is brought to the photovoltaic power station so that the fixing nails are inserted into the soil so that the base 3 is in contact with the ground. The moisture content of the soil is monitored by the soil moisture sensor 4. Then, the screw 2 is rotated by the handle so that the screw 2 is disengaged from the water collection frame 5. Then, the water collection frame 5 is pulled to move so that the water collection frame 5 is moved to a position near the photovoltaic panel. Then, the screw 2 is rotated in the opposite direction by the handle so that the screw 2 is in contact with the water collection frame 5, thereby fixing the water collection frame 5. When it rains, rainwater will fall along the photovoltaic panel and flow into the water collection frame 5, so that the water flows through the filter 6 and flows from the water pipe into the collection bottle 8, thereby collecting the rainwater. When it is necessary to irrigate the herbaceous plants, the auxiliary pipe 12 is picked up by hand so that the auxiliary pipe 12 is connected to the connecting joint. 14 contacts, and then moves the auxiliary pipe 12, so that the auxiliary pipe 12 is clamped with the shunt pipe 11, so that the auxiliary pipe 12 is in contact with the baffle 15, and then the baffle 15 moves along the connecting joint 14, and the spring 16 is squeezed, and then the auxiliary pipe 12 is installed, so that the auxiliary pipe 12 can be installed according to the vegetation planting situation, which is convenient for adapting to the irrigation needs of vegetation planting at different densities, and is convenient for the disassembly and installation of the auxiliary pipe 12, thereby improving the flexibility and convenience of use. Subsequently, the water pump 10 is started, and water is introduced from the collection bottle 8 into the outlet pipe 9 through the water pump 10, flows into the shunt pipe 11, and then flows into the auxiliary pipe 12, so that water is sprayed out from the nozzle 13 for irrigation, thereby being able to collect rainwater, facilitate water storage, and automatically irrigate the herbaceous plants, thereby improving the efficiency of irrigation. After the irrigation is completed, the water pump 10 can be turned off.
[0022] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.
Claims
1. A water collection and irrigation device for growing economic herbaceous plants in a photovoltaic power station, characterized in that: The invention comprises a support column (1), a screw (2), a base (3), a soil moisture sensor (4), a water collecting frame (5), a water inlet pipe (7), a collecting bottle (8), a water outlet pipe (9), a diversion pipe (11), an auxiliary pipe (12) and a nozzle (13). The support column (1) is provided with two left and right parts. The outer sides of the upper parts of the support columns (1) are connected to the screw (2) through threads. The lower parts of the support columns (1) are connected to the base (3). The lower sides of the middle parts of the bases (3) are connected to the soil moisture sensors (4). The upper parts of the support columns (1) are connected to the soil moisture sensors (4) in a sliding manner. The water collecting frame (5) and the screw rod (2) are in contact with the water collecting frame (5). The lower left side of the water collecting frame (5) is connected to a water inlet pipe (7). The collecting bottle (8) is placed on the ground. The collecting bottle (8) is located in front of the left support column (1). The collecting bottle (8) is connected to the tail end of the water inlet pipe (7). The upper middle side of the collecting bottle (8) is connected to a water outlet pipe (9). The tail end of the water outlet pipe (9) is connected to a diversion pipe (11). The right side of the diversion pipe (11) is connected to a plurality of auxiliary pipes (12). The auxiliary pipes (12) are each connected to a plurality of nozzles (13).
2. A water collection and irrigation device for economic herbaceous plant cultivation in a photovoltaic power station according to claim 1, characterized in that: The outer sides of the screw rod (2) are all provided with handles.
3. A water collection and irrigation device for economic herbaceous plant cultivation in a photovoltaic power station according to claim 2, characterized in that: A plurality of fixing nails are provided on the base (3).
4. A water collection and irrigation device for economic herbaceous plant cultivation in a photovoltaic power station according to claim 3, characterized in that: It also includes a filter screen (6), and the inner side of the upper left portion of the water collecting frame (5) is connected to the filter screen (6).
5. A water collection and irrigation device for growing economic herbaceous plants in a photovoltaic power station according to claim 4, characterized in that: The utility model further comprises a water pump (10), and the right part of the water outlet pipe (9) is connected with the water pump (10).
6. A water collection and irrigation device for growing economic herbaceous plants in a photovoltaic power station according to claim 5, characterized in that: The utility model further comprises a connecting joint (14), a baffle (15) and a spring (16). The right side of the shunt pipe (11) is connected with a plurality of connecting joints (14). The connecting joints (14) are all in contact with the adjacent auxiliary pipes (12). The connecting joints (14) are all slidably connected with baffles (15). The baffles (15) are connected to the adjacent connecting joints (14) with two front and rear springs (16).