Energy-saving irrigation equipment
By combining flow sensors and small electric poles, precision irrigation is achieved, solving the problems of water waste and uneven water distribution in traditional irrigation methods, and improving the irrigation efficiency and water resource utilization rate of landscaping.
Patent Information
- Application Number
- CN202520060567.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-10
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-01-10
AI Technical Summary
Traditional irrigation methods are inefficient, labor-intensive, and result in uneven water distribution, as well as water waste and soil erosion.
A flow sensor is used to monitor water flow in real time, and a small electric pole is used to automatically adjust the angle of the delivery pipe to ensure accurate irrigation water volume and reduce water waste. Precision irrigation is achieved through the combination of flow sensor and small electric pole.
It achieves efficient use of water resources, ensuring that every drop of water is used effectively, reducing water loss, improving plant growth efficiency, and saving labor costs.
Smart Images

Figure CN223758906U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of landscaping irrigation technology, and in particular to an energy-saving irrigation device. Background Technology
[0002] In landscaping projects, traditional irrigation methods mainly include manual watering, furrow irrigation, and sprinkler irrigation. While these methods address the water needs of plants to some extent, they also have many drawbacks. First, manual watering relies on manual operation, resulting in low efficiency, high labor intensity, and an inability to guarantee even water distribution, easily leading to localized overwatering or underwatering. Second, furrow irrigation is extremely wasteful of water resources, especially in arid regions, and can easily cause soil erosion. Modern water-saving irrigation technologies, with their high efficiency and precision, are gradually replacing traditional irrigation methods. Researchers are using advanced materials and technologies, such as intelligent control systems, sensors, and automated devices, to improve irrigation efficiency and reduce water and energy consumption. Currently, new irrigation technologies such as drip irrigation and micro-sprinkler irrigation are widely used in agriculture and landscaping, showing promising economic and ecological benefits.
[0003] During the use of irrigation equipment, since garden plants need to be irrigated, too much or too little watering by hand will affect the normal growth of the plants. Therefore, it is necessary to accurately measure the amount of water discharged, and the angle of the delivery pipe must be easy to adjust when irrigating the plants. Otherwise, the amount of water discharged from the delivery pipe cannot be accurately irrigated on the green plants. Utility Model Content
[0004] This disclosure relates to an energy-saving irrigation device. Workers can determine the amount of water needed for irrigation based on data displayed on a flow sensor. This ensures that the amount of water used to irrigate the plants is neither too much nor too little. The flow sensor can monitor the water flow in real time, allowing for precise irrigation based on the actual needs of the plants, thus avoiding water waste. By monitoring and adjusting the irrigation flow, every drop of water can be effectively utilized, reducing water loss caused by over-irrigation and enabling plants to grow normally. Furthermore, the small electric pole can automatically move the positioning column up and down, and one person can adjust the angle of the delivery pipe by holding the handle, thereby saving labor. The adjusted angle of the delivery pipe facilitates the water discharged from the nozzles to fall onto the green plants for irrigation.
[0005] In a first aspect, this disclosure provides an energy-saving irrigation device, specifically comprising: a water tank; a small cover installed on the top of the water tank; a small door installed on the side wall of the water tank; a through-hole opened in the middle of the upper end of the water tank; symmetrical rectangular grooves opened on the top of the water tank; and a fixing frame fixedly installed at the two rectangular grooves of the water tank, wherein a through-hole is opened in the middle of the upper end of the fixing frame.
[0006] The fixed frame has evenly spaced positioning grooves at the upper edge of the fixing hole; a through-hole fixing pipe is fixedly installed in the fixing hole of the fixed frame; a conveying pipe is rotatably installed in the inner cavity of the fixing pipe; a flow sensor is fixedly inserted into the upper end of the conveying pipe; handles are fixedly installed on both sides of the upper end of the conveying pipe; and a telescopic tube is installed at the opening of the upper end of the conveying pipe.
[0007] Symmetrical anti-detachment rotating rings are fixedly installed on the side wall of the lower end of the conveying pipe. A cantilever plate is fixedly installed on the side wall of the lower end of the conveying pipe, and a through circular hole is opened at the right end of the cantilever plate. Symmetrical guide holes are opened on the cantilever plate. A through small electric rod is fixedly installed at the circular hole of the cantilever plate, and a connecting positioning plate is fixedly installed at the lower end of the small electric rod. A positioning column is fixedly installed at the bottom of the connecting positioning plate, and symmetrical guide rods are fixedly installed on the connecting positioning plate.
[0008] In at least some embodiments, a stabilizing plate is fixedly installed at the center of the top of the water tank, and through screws are rotatably inserted at the four corners of the stabilizing plate, and a water pump is fixedly installed at the center of the stabilizing plate.
[0009] In at least some embodiments, the lower end of the water pump is fixedly connected to a through-hole pumping pipe, the upper end of the water pump is fixedly connected to a through-hole draining pipe, and the lower end of the water tank is fixedly mounted on the truck bed.
[0010] In at least some embodiments, the inner wall of the fixed pipe is provided with mutually symmetrical anti-detachment grooves, and a stabilizing plate is fixedly installed on the outer wall of the upper end of the fixed pipe, and through bolts are evenly inserted on the stabilizing plate.
[0011] This utility model provides an energy-saving irrigation device with the following beneficial effects:
[0012] In this utility model, when the irrigation equipment is in use, workers can determine the amount of water needed for irrigation based on the data displayed on the flow sensor. This ensures that the amount of water used to irrigate the plants is neither too much nor too little. The flow sensor can monitor the water flow in real time, allowing for precise irrigation based on the actual needs of the plants, thus avoiding water waste. By monitoring and adjusting the irrigation flow, it is ensured that every drop of water is effectively utilized, reducing water loss caused by over-irrigation and enabling the plants to grow normally. Furthermore, the small electric pole can automatically move the positioning column up and down, and one person can adjust the angle of the delivery pipe by holding the handle, thereby saving labor. The adjusted angle of the delivery pipe ensures that the water discharged from the nozzle falls onto the green plants for irrigation.
[0013] By grasping the handle, the angle of the delivery pipe and the telescopic pipe can be easily adjusted. Then, the water nozzle on the telescopic pipe can be aimed at the garden plants, so that the discharged water can fall on the plants, which not only effectively irrigates the plants but also saves water resources. Attached Figure Description
[0014] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings of the embodiments will be briefly described below.
[0015] The accompanying drawings described below are only related to some embodiments of the present invention and are not intended to limit the scope of the present invention.
[0016] In the attached diagram:
[0017] Figure 1 A schematic diagram of the left front upper axis view structure of this application is shown;
[0018] Figure 2 A schematic diagram of the disassembled structure of this application, excluding the truck bed portion, is shown;
[0019] Figure 3 This invention provides a schematic diagram of the disassembled structure of the water tank section.
[0020] Figure 4 The diagram shows a cross-sectional view of the delivery pipe section and the fixed pipe section of this application.
[0021] List of reference numerals
[0022] 1. Water tank; 101. Stabilizing plate; 102. Water pump; 103. Pumping pipe; 104. Draining pipe; 105. Cargo bed; 2. Fixing frame; 201. Positioning groove; 3. Fixing pipe; 301. Anti-detachment groove; 302. Stabilizing plate; 4. Conveying pipe; 401. Flow sensor; 402. Handle; 403. Telescopic pipe; 404. Anti-detachment ring; 405. Cantilever plate; 406. Guide hole; 407. Small electric pole; 408. Connecting positioning plate; 409. Positioning post; 410. Guide rod. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the described embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0024] Example 1: Please refer to Figures 1 to 4 :
[0025] This utility model proposes an energy-saving irrigation device, comprising: a water tank 1; a small cover is installed on the top of the water tank 1; opening the small cover on the water tank 1 facilitates water filling; a small door is installed on the side wall of the water tank 1; opening the small door on the water tank 1 facilitates cleaning of debris inside; a through-hole is opened in the middle of the upper end of the water tank 1; the lower end of the water pump pipe 103 is inserted into the lower end of the water tank 1 through the through-hole; symmetrical rectangular grooves are opened on the top of the water tank 1; a fixing frame 2 is fixedly installed in the two rectangular grooves of the water tank 1, and a through-hole is opened in the middle of the upper end of the fixing frame 2; positioning grooves 201 are evenly opened on the upper edge of the fixing hole of the fixing frame 2; a through-hole fixing pipe 3 is fixedly installed in the fixing hole of the fixing frame 2; a conveying pipe 4 is rotatably installed in the inner cavity of the fixing pipe 3.
[0026] A stabilizing plate 101 is fixedly installed at the center of the top of the water tank 1. Through screws are inserted at each of the four corners of the stabilizing plate 101, securing it to the water tank 1 and preventing it from moving when touched. This allows the stabilizing plate 101 to stably support the water pump 102. The water pump 102 is fixedly installed at the center of the stabilizing plate 101. When the water pump 102 is started, water from the water tank 1 is pumped up through the suction pipe 103 and transported through the drain pipe 104 into the fixed pipe 3. From there, the water flows into the delivery pipe 4. The flow rate through the delivery pipe 4 is monitored in real time by the flow sensor 401. The water is then discharged from the left end of the telescopic pipe 403 to irrigate the landscaping. Workers can determine the amount of water needed for irrigation based on the data displayed on the flow sensor 401, thus preventing excessive water discharge from the landscaping. In the event of water shortage or lack of water, water resources are saved and the landscaping is evenly irrigated. The lower end of the water pump 102 is fixedly connected to a through-flow pumping pipe 103, and the upper end of the water pump 102 is fixedly connected to a through-flow drain pipe 104. The drain pipe 104 is inserted into the inner cavity of the delivery pipe 4. The lower end of the water tank 1 is fixedly installed on the truck bed 105, and the truck bed 105 is fixedly connected to the truck head. As the vehicle slowly moves, it irrigates the surrounding landscaping. Symmetrical anti-detachment grooves 301 are provided on the inner side wall of the fixed pipe 3. A stabilizing plate 302 is fixedly installed on the outer side wall of the upper end of the fixed pipe 3, and through bolts are evenly inserted on the stabilizing plate 302. The bolts on the stabilizing plate 302 are rotated and inserted into the fixed frame 2 to fix and restrict the stabilizing plate 302 and the fixed pipe 3. When the fixed pipe 3 is touched, it will not move, preventing the lower end of the fixed pipe 3 from being misaligned from the drain pipe 104.
[0027] A flow sensor 401 is fixedly installed at the upper end of the delivery pipe 4; the flow sensor 401 monitors the fluid flow rate in real time, providing accurate data for regulating and controlling the fluid flow. Handles 402 are fixedly installed on both sides of the upper end of the delivery pipe 4; grasping the handles 402 facilitates adjusting the angle of the delivery pipe 4 and the telescopic pipe 403, making it convenient for irrigating the surrounding landscaping. A telescopic pipe 403 is installed at the upper opening of the delivery pipe 4; a water nozzle that can be adjusted up and down is installed at the left end of the telescopic pipe 403. A spray head that can be adjusted up and down is fixedly installed on the side wall of the lower end of the delivery pipe 4. Two symmetrical anti-detachment rotating rings 404 are rotatably installed in two anti-detachment rotating grooves 301, respectively. They prevent the conveying pipe 4 from moving up and down when it rotates. A cantilever plate 405 is fixedly installed on the side wall of the lower end of the conveying pipe 4. A through-hole is opened at the right end of the cantilever plate 405. Symmetrical guide holes 406 are opened on the cantilever plate 405. A through-hole small electric rod 407 is fixedly installed at the round hole of the cantilever plate 405. A connecting positioning plate 408 is fixedly installed at the lower end of the small electric rod 407. The bottom of the connecting positioning plate 408 is connected to... The top of the fixed frame 2 is attached, and the bottom of the connecting positioning plate 408 is fixedly installed with a positioning post 409. Using a small electric rod 407, move the connecting positioning plate 408 and the positioning post 409 upwards to pull the positioning post 409 out of the positioning groove 201. Then, grasp the handle 402 and rotate the angle of the delivery pipe 4 and the telescopic pipe 403 so that the water nozzle on the telescopic pipe 403 is aimed at the landscaping. Next, use the small electric rod 407 to move the connecting positioning plate 408 downwards to insert the positioning post 409 into the corresponding positioning groove 201. At this point, the delivery pipe 4 will stop when touched. The vehicle can rotate so that it can slowly irrigate a row of greenery at one angle. Symmetrical guide rods 410 are fixedly installed on the connecting positioning plate 408. The guide rods 410 slide through the guide holes 406. When the connecting positioning plate 408 slides up and down, the guide rods 410 are restricted by the guide holes 406, and the connecting positioning plate 408 can only slide up and down. This prevents the connecting positioning plate 408 and the positioning post 409 from tilting when they slide up and down, so that the positioning post 409 at the bottom of the connecting positioning plate 408 cannot be stably inserted into the positioning groove 201.
[0028] Example 2, based on Example 1, such as Figure 1 and Figure 4 As shown, a stabilizing plate 302 is fixedly installed on the outer wall of the upper end of the fixed pipe 3, and through bolts are evenly inserted on the stabilizing plate 302. After removing the bolts on the stabilizing plate 302, the stabilizing plate 302 is fixedly welded to the fixed frame 2 to stabilize and restrict the stabilizing plate 302 and the fixed pipe 3. In this way, the fixed pipe 3 will not move when touched, preventing the bolts from loosening after long-term use and making it impossible to continue to fix and restrict the fixed pipe 3. At the same time, it also saves parts costs.
[0029] The working principle of this embodiment is as follows: During use, the truck bed 105 is fixedly connected to the truck head. When the vehicle slowly moves to irrigate the surrounding landscaping, first use the small electric rod 407 to move upward to connect the positioning plate 408 and the positioning post 409, pull the positioning post 409 out of the positioning groove 201, grasp the handle 402 to easily adjust the angle of the delivery pipe 4 and the telescopic pipe 403, then aim the water nozzle on the telescopic pipe 403 at the landscaping, and then use the small electric rod 407 to move downward to connect the positioning plate 408, insert the positioning post 409 into the corresponding positioning groove 201. At this time, the delivery pipe 4 is subjected to... Touching it prevents rotation. The water pump 102 is started, and the water is pumped up from the water tank 1 through the water pipe 103. The water is then transported into the fixed pipe 3 through the drain pipe 104, and then flows into the delivery pipe 4 from the fixed pipe 3. At this time, the amount of water passing through the delivery pipe 4 is monitored in real time by the flow sensor 401. The water is then discharged outward from the left end of the telescopic pipe 403 to irrigate the landscaping. Workers can know the amount of water used for irrigation based on the data displayed on the flow sensor 401. This prevents the landscaping from receiving too much water or experiencing water shortage, thus saving water and ensuring even irrigation of the landscaping.
[0030] The following points should be noted in this article:
[0031] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in general design.
[0032] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0033] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. An energy efficient irrigation apparatus comprising: The utility model provides a water tank (1), the top of water tank (1) is equipped with a small lid, the lateral wall of water tank (1) is equipped with a small door, the upper end of water tank (1) is equipped with a through pipe hole in the middle, the top of water tank (1) is equipped with a rectangular groove that is symmetrical, the fixed frame (2) is fixedly installed at the two rectangular grooves of water tank (1), and the fixed hole is equipped with a through fixed pipe (3) in the fixed frame (2) fixed hole upper end edge, the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably 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(3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rotatably installed in the inner chamber of fixed pipe (3), the fixed pipe (3) is rot 2. The energy efficient irrigation device as claimed in claim 1, wherein: 3. The energy efficient irrigation device as claimed in claim 2, wherein: 4. The energy efficient irrigation device as claimed in claim 1, wherein: 5. The energy efficient irrigation device as claimed in claim 1, wherein: 6. The energy efficient irrigation device as claimed in claim 5, wherein: 7. The energy efficient irrigation device as claimed in claim 6, wherein: