An irrigation device and method for greening and maintaining gardens

By integrating data collection, analysis, control and feedback devices in the garden irrigation system, the problem that traditional irrigation systems cannot accurately judge garden needs is solved, and precise adjustment of the garden growth environment and improvement of irrigation efficiency is achieved.

CN118160615BActive Publication Date: 2025-06-24DAZI HUFENG LANDSCAPING CO LTD
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Patent Information

Application Number
CN202410438343.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-04-12
Publication Date
2025-06-24
Estimated Expiration
2044-04-12

AI Technical Summary

Technical Problem

Traditional irrigation systems cannot accurately judge the growth status and demand of the garden, cannot provide appropriate amounts of water according to demand, and cannot adjust the growth status in time after irrigation.

Method used

A system including data collection, data analysis, irrigation control and feedback devices was designed to analyze data by monitoring soil moisture, temperature and other parameters in real time to determine the optimal irrigation time and method, and control irrigation flow and time based on the analysis results.

Benefits of technology

Accurate adjustment of the garden growth environment is achieved, ensuring that plants get appropriate amounts of water, adapt to the ever-changing growth environment and needs, and improving the efficiency and effect of irrigation.

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Abstract

The present invention belongs to the technical field of garden maintenance, and specifically relates to an irrigation device and method for a greening maintenance garden. This irrigation device and method for a greening maintenance garden include: a data collection device; a data analysis device; an irrigation control device; a feedback device; Step 1, data collection; Step 2, data analysis; Step 3, irrigation operation and maintenance; Step 4, maintenance adjustment. This irrigation device and method for a greening maintenance garden can detect the soil water shortage situation during real-time monitoring and send a control signal to the irrigation control device to process and analyze the collected data. Relying on the judgment of the personnel in the control center, the current growth state and needs of the garden can be determined, providing a decision-making basis for subsequent irrigation control. By repeating data analysis and adjusting the irrigation strategy when necessary, the entire system can adapt to the constantly changing garden growth environment and needs, and can always optimize irrigation for the growth state of the garden.
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Description

Technical Field

[0001] The present invention belongs to the technical field of garden maintenance, and particularly relates to an irrigation device and method for a greening maintenance garden. Background Art

[0002] Irrigation of a greening maintenance garden refers to artificially supplementing water to meet the water required for the growth of the garden, so as to maintain the normal growth and development of the garden. Irrigation is very important for the maintenance of landscaping, because the growth of the garden is inseparable from water.

[0003] Regarding the general method of collecting, analyzing and irrigating garden data by existing personnel, we found that the irrigation devices and methods used in greening maintenance gardens have the following defects:

[0004] Traditional irrigation systems often cannot accurately judge the growth status and needs of the garden, cannot provide an appropriate amount of water according to the needs of the garden, and cannot make timely improvement treatments for the growth status of the garden after irrigation operations. Therefore, we propose an irrigation device and method for a greening maintenance garden. Summary of the Invention

[0005] The purpose of the present invention is to provide an irrigation device and method for a greening maintenance garden, so as to solve the technical problems that traditional irrigation systems often cannot accurately judge the growth status and needs of the garden, cannot provide an appropriate amount of water according to the needs of the garden, and cannot make timely improvement treatments for the growth status of the garden after irrigation operations.

[0006] To solve the above technical problems, the present invention provides an irrigation device for a greening maintenance garden, including:

[0007] A plurality of data collection devices are arranged in the garden irrigation point area, and are used for measuring parameters such as soil humidity, temperature, nutrient content, etc., and collecting data related to irrigation;

[0008] The data analysis device is connected to the data collection device and at the same time connected to the control center. Its main function is to process and analyze the collected data. Through these analyses, the best timing and method of irrigation can be identified;

[0009] The irrigation control device is connected to the data analysis device, and its entity is a switch device, which can control the flow rate, time and other parameters of irrigation;

[0010] The feedback device is arranged in the garden area and connected to the data analysis device, so as to provide feedback and enable the control center to real-time control the status of the garden area;

[0011] The irrigation control device includes a housing, an upper irrigation mechanism arranged in the housing, and a control mechanism arranged below the housing;

[0012] The upper irrigation mechanism includes a honeycomb irrigation head, a plurality of irrigation pipes connected to the honeycomb irrigation head, and a water storage base with its bottom communicating with the outside. The plurality of irrigation pipes are respectively connected to the honeycomb irrigation head. The irrigation pipes are sleeved with polygonal magnetic adsorption sleeves, and the plurality of polygonal magnetic adsorption sleeves attract each other. Each side of the polygonal magnetic adsorption sleeve is hinged with a strong magnetic isolation shielding plate to rotatably shield the side of the polygonal magnetic adsorption sleeve;

[0013] The polygonal magnetic adsorption sleeve protrudes with an insert towards the irrigation pipe. The insert protrudes with a plurality of insertion rods towards the irrigation pipe. The insertion rods are magnetic. The irrigation pipe is provided with circular grooves at the positions opposite to the insertion rods, and elastic annular rings are arranged at the circular grooves to fix the insertion rods;

[0014] The control mechanism includes a rotating base and a control motor for driving the rotating base to rotate.

[0015] Furthermore, the data collection device includes a plurality of sensors and a detection bracket. The sensors are installed on the detection bracket, and the installation area on the detection bracket is selected according to the sensor type and the purpose of use. The bottom to the top of the detection bracket inserted into the soil for fixation can serve as the installation fulcrum for the sensors, and the installation fulcrum is not limited to installing sensors.

[0016] Furthermore, the data analysis device is a signal emission panel and sends a control signal to the irrigation control device when it detects that the soil is short of water in real time, and sends other data to the control center.

[0017] Furthermore, the irrigation control device is a receiving panel and is connected to the irrigation device.

[0018] Furthermore, the feedback device is a signal emission panel, and the entity is a monitoring device built in the garden area according to requirements.

[0019] An irrigation method for a greening and maintenance garden, the method includes the following steps:

[0020] Step 1, data collection. By distributing the data collection device in the garden irrigation point area, it is responsible for continuously and real-time collecting various data on plant growth, such as important information such as temperature, humidity, soil water content, and plant growth stage;

[0021] Step 2, data analysis. By connecting the data analysis device with the data collection device, when detecting the soil water shortage situation during real-time monitoring, a control signal is sent to the irrigation control device, and at the same time, it remains connected to the control center, so as to process and analyze the collected data, and rely on the personnel in the control center to judge the current growth state and needs of the plants, providing a decision-making basis for subsequent irrigation control;

[0022] Step 3: Irrigation operation and maintenance processing. The irrigation control device controls the irrigation of the irrigation device according to the results of the data analysis device, which can ensure that plants receive appropriate amounts of water to meet their growth needs and achieve precise adjustment of the plant growth environment.

[0023] Step 4: Maintenance adjustment. The feedback devices are distributed in the garden area, connected to the control center, monitor the growth status of plants after irrigation, and feed the results back to the data analysis device. After data analysis in Step 2 and adjusting the irrigation strategy when necessary, the entire system can adapt to the changing plant growth environment and needs.

[0024] The beneficial effects of the irrigation device and method for greening maintenance of the present invention are as follows:

[0025] 1. By detecting the water shortage situation in the soil during real-time monitoring and sending a control signal to the irrigation control device to process and analyze the collected data, and relying on the judgment of the personnel in the control center to determine the current growth status and needs of the garden, it provides a decision basis for subsequent irrigation control. By repeating data analysis and adjusting the irrigation strategy when necessary, the entire system can adapt to the changing garden growth environment and needs, and can always optimize irrigation for the growth status of the garden.

[0026] To make the above objects, features, and advantages of the present invention more obvious and understandable, the following specifically enumerates preferred embodiments and, in conjunction with the accompanying drawings, makes a detailed description as follows. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. Obviously, the following drawings are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0028] Figure 1 It is a schematic diagram of the irrigation device of the present invention;

[0029] Figure 2 It is a structural plan view of the data collection device of the present invention;

[0030] Figure 3 It is a flowchart of the method of the present invention;

[0031] Figure 4 It is a schematic structural diagram of the irrigation control device of the present invention;

[0032] Figure 5It is a schematic structural diagram of the polygonal magnetic adsorption sleeve of the present invention.

[0033] In the figure:

[0034] 1. Data collection device; 11. Sensor; 12. Detection bracket;

[0035] 2. Data analysis device;

[0036] 3. Irrigation control device;

[0037] 4. Feedback device;

[0038] 5. Control center;

[0039] 6. Irrigation control device; 61. Housing;

[0040] 7. Upper irrigation mechanism; 71. Honeycomb irrigation head; 72. Irrigation pipe; 721. Circular groove; 73. Water storage base; 74. Polygonal magnetic adsorption sleeve; 741. Strong magnetic isolation shielding plate;

[0041] 8. Insertion part; 81. Insertion rod;

[0042] 9. Elastic ring;

[0043] 10. Control mechanism; 101. Rotating base; 102. Control motor. Specific implementation mode

[0044] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0045] Embodiment:

[0046] As Figures 1 to 5 shown, the irrigation device for greening maintenance gardens in this embodiment includes:

[0047] The data collection device 1, which is multiple and arranged in the area of the garden irrigation points, is responsible for collecting relevant data on the growth of plants in the garden, including but not limited to information such as temperature, humidity, soil moisture content, and plant growth stage;

[0048] The data analysis device 2 is connected to the data collection device 1 and at the same time connected to the control center 5. It is mainly responsible for processing and analyzing the collected data. Through these analyses, it can identify the best timing and methods of irrigation. The data analysis device 2 processes and analyzes the collected data to determine the current growth status and needs of the plants;

[0049] The irrigation control device 3 is connected to the data analysis device 2. It is a switch device that can control the flow rate, time, and other parameters of irrigation. According to the results of the data analysis device 2, it controls the irrigation volume of the irrigation device to meet the growth needs of the plants. The irrigation control device 3 is also interconnected with the control center 5;

[0050] The feedback device 4 is set in the garden area and connected to the data analysis device 2 to provide feedback, enabling the control center to monitor the status of the garden area in real time. This module monitors the growth status of the plants after irrigation and feeds back the results to the data analysis device 2 for subsequent adjustment of the irrigation strategy.

[0051] As Figure 2 shown, the data collection device 1 includes multiple sensors 11 and a detection bracket 12. The sensors 11 can be of various types according to requirements, including temperature sensors, humidity sensors, soil moisture sensors, and plant growth stage sensors. The sensors 11 are installed on the detection bracket 12, and the installation area on the detection bracket 12 is selected according to the sensor type and usage purpose. The detection bracket 12 is inserted into the soil for fixation, and the entire bottom to the top can be used as the installation fulcrum for the sensors 11. The installation fulcrum is not limited to installing the sensors 11.

[0052] As Figure 1 shown, the data analysis device 2 is a signal emission panel. When it detects a lack of water in the soil in real time, it sends a control signal to the irrigation control device 3 and sends other data to the control center 5.

[0053] As Figure 1 shown, the irrigation control device 3 is a receiving panel and is connected to the irrigation device. The irrigation device is built in the garden using an underground drip irrigation system. The irrigation system (through irrigation heads with valves installed underground, the pipeline system can be laid on the ground or buried underground, directly delivering the water source to the designated area of the pipeline system, and then introducing the water into the soil through the irrigation heads.

[0054] As Figure 1 shown, the feedback device 4 is a signal emission panel. It is a monitoring device built in the garden area according to requirements. The monitoring device consists of a camera, sensors 11, and a data collector device, where the sensor device 1 and the data are provided by the data collection device 1.

[0055] In summary, combined with the irrigation method of the greening and maintenance garden in this embodiment, the specific implementation steps are as follows:

[0056] Step 1: Data collection. By distributing the data collection device 1 within the garden irrigation point area, it is responsible for continuously and real-time collecting various data on plant growth, such as important information like temperature, humidity, soil water content, and plant growth stage.

[0057] Step 2: Data analysis. The data analysis device 2 is connected to the data collection device 1. When detecting the soil water shortage situation during real-time monitoring, it sends a control signal to the irrigation control device 3, and at the same time maintains a connection with the control center 5, thereby processing and analyzing the collected data. Relying on the judgment of the personnel in the control center 5, the current growth state and needs of the plants are determined, providing a decision basis for subsequent irrigation control.

[0058] Step 3: Irrigation operation and maintenance treatment. The irrigation control device 3 controls the irrigation of the irrigation device according to the results of the data analysis device 2. It can ensure that the plants receive appropriate moisture to meet their growth needs, achieving precise adjustment of the plant growth environment.

[0059] Step 4: Maintenance adjustment. The feedback device 4 is distributed within the garden area, maintains a connection with the control center 5, monitors the growth state of the plants after irrigation, and feeds back the results to the data analysis device 2. After data analysis through Step 2, the irrigation strategy is adjusted when necessary, enabling the entire system to adapt to the constantly changing plant growth environment and needs.

[0060] The irrigation control device 6 includes a housing 61, an upper irrigation mechanism 7 provided inside the housing 61, and a control mechanism 10 provided below the housing.

[0061] Among them, the upper irrigation mechanism 7 includes a honeycomb irrigation head 71, several irrigation pipes 72 connecting the honeycomb irrigation head 71, and a water storage base 73 communicating with the outside at the bottom. The several irrigation pipes 72 are respectively connected to the honeycomb irrigation head 71, and a polygonal magnetic adsorption sleeve 74 is sleeved on the irrigation pipe 72, and the several polygonal magnetic adsorption sleeves 74 attract each other.

[0062] Through the honeycomb irrigation heads 71 of the several irrigation pipes 72, multiple water columns can be used to irrigate different areas in the shape of a honeycomb, improving the irrigation area and irrigation efficiency. The water storage base 73 supplies water to the several irrigation pipes 72. At the same time, the adjacent irrigation pipes 72 can be connected through the polygonal magnetic adsorption sleeves 74, thereby forming multiple groups of honeycomb irrigation heads 71 with different quantities, which can

[0063] In this embodiment, the number of sides of the polygonal magnetic adsorption sleeve 74 may be but is not limited to four sides, eight sides, twelve sides, etc. The number of a group of honeycomb irrigation heads 71 may be but is not limited to 2, 3, 4, 5, etc.

[0064] A strong magnetic isolation shielding plate 741 is hinged to each side of the polygonal magnetic adsorption sleeve 74 to rotatably shield the side of the polygonal magnetic adsorption sleeve 74. By lowering the strong magnetic isolation shielding plate 741, the magnetism of the polygonal magnetic adsorption sleeve 74 can be shielded, thus avoiding the accidental adsorption of adjacent polygonal magnetic adsorption sleeves 74. Also, the strong magnetic shielding plate can be rotated to be lifted, facilitating the adsorption of multiple adjacent polygonal magnetic adsorption sleeves 74.

[0065] An insertion member 8 protrudes from the side of the polygonal magnetic adsorption sleeve 74 facing the irrigation pipe 72. A plurality of insertion rods 81 protrude from the side of the insertion member 8 facing the irrigation pipe 72. The insertion rods 81 are magnetic. A circular groove 721 is provided at the position of the irrigation pipe 72 opposite to the insertion rods 81, and an elastic ring 9 is provided at the circular groove 721 to fix the insertion rods 81, improving the stability of the insertion rods 81 in the irrigation pipe 72.

[0066] The control mechanism 10 includes a rotating base 101 and a control motor 102 for driving the rotation of the rotating base 101. The control motor 102 controls the rotation of the rotating base 101, so that the honeycomb irrigation head 71 can rotate and spray in all directions, improving the water spraying range.

[0067] By inserting the insertion rods 81 on the insertion member 8 into the irrigation pipe 72, the insertion member 8 can be better fixed in the irrigation pipe 72, and thus the polygonal magnetic adsorption sleeve 74 can be better fixed, improving the stability of the polygonal magnetic adsorption sleeve 74 in the irrigation pipe 72. At the same time, due to the magnetism of the insertion rods 81, iron substances in the irrigation pipe 72 can be adsorbed to purify the water source. When the insertion rods 81 adsorb iron substances, the diameter of the insertion rods 81 can also be increased to enhance the stability of the insertion rods 81 in the irrigation pipe 72.

[0068] All the components selected in this application are common standard components or components known to those skilled in the art. Their structures and principles can be known to those skilled in the art through technical manuals or obtained through conventional experimental methods.

[0069] In the description of the embodiments of the present invention, unless otherwise clearly specified and limited, the terms "installation", "connection", and "coupling" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0070] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be construed as a limitation of the present invention. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0071] Based on the above-mentioned ideal embodiments of the present invention as an inspiration, through the above description, relevant staff can completely make various changes and modifications without departing from the technical idea of this invention. The technical scope of this invention is not limited to the content in the specification, and its technical scope must be determined according to the scope of the claims.

Claims

1. An irrigation device for greening and maintaining gardens, characterized in that: include: Data collection devices, multiple and set in the area of ​​garden irrigation points, used to measure temperature, humidity, soil moisture content and parameters of garden growth stages, and collect data related to irrigation; A data analysis device is connected to the data collection device and the control center, and its function is to process and analyze the collected data. Through these analyses, the best time and method for irrigation can be identified; The irrigation control device is connected to the data analysis device and is a switch device capable of controlling the flow and time of irrigation; The feedback device is installed in the garden area and connected to the data analysis device to provide feedback, so that the control center can control the status of the garden area in real time; The irrigation control device (6) comprises a housing (61), an upper irrigation mechanism (7) arranged in the housing (61), and a control mechanism (10) arranged below the housing; The upper irrigation mechanism (7) comprises a honeycomb irrigation head (71), a plurality of irrigation pipes (72) connected to the honeycomb irrigation head (71), and a water storage base (73) connected to the outside at the bottom, wherein the plurality of irrigation pipes (72) are respectively connected to the honeycomb irrigation head (71), the irrigation pipes (72) are sleeved with a polygonal magnetic adsorption sleeve (74), the plurality of polygonal magnetic adsorption sleeves (74) attract each other, and each side of the polygonal magnetic adsorption sleeve (74) is hinged with a strong magnetic isolation shielding plate (741) to rotate and shield the side of the polygonal magnetic adsorption sleeve (74); The polygonal magnetic adsorption sleeve (74) has an insert (8) protruding from one side of the irrigation pipe (72); the insert (8) has a plurality of insert rods (81) protruding from one side of the irrigation pipe (72); the insert rods (81) are magnetic; a circular groove (721) is provided at a position of the irrigation pipe (72) opposite to the insert rods (81); an elastic annular ring (9) is provided at the circular groove (721) to fix the insert rods (81); The control mechanism (10) comprises a rotating base (101) and a control motor (102) for driving the rotating base (101) to rotate; The data collection device includes a plurality of sensors and a detection bracket. The sensors are mounted on the detection bracket. The mounting area on the detection bracket is selected according to the sensor type and the purpose of use. The detection bracket is inserted into the soil for fixing. The bottom to the top can serve as the mounting fulcrum of the sensor. The mounting fulcrum is not limited to the mounting of sensors. The data analysis device is a signal transmission panel and sends a control signal to the irrigation control device when soil water shortage is detected in real time, and sends the control signal to the control center.

2. The irrigation device for greening and maintaining gardens as claimed in claim 1, characterized in that: The irrigation control device is a receiving panel and is connected to the irrigation device.

3. The irrigation device for greening and maintaining gardens as claimed in claim 1, characterized in that: The feedback device is a signal transmitting panel entity which is a monitoring device built in the garden area according to needs.

4. A method for irrigation of greening and maintaining gardens, characterized in that: Applied to the device according to any one of claims 1 to 3, the method comprises the following steps: Step 1: Data collection: by distributing data collection devices in the area of ​​garden irrigation points, it is responsible for continuously and real-time collection of various data about garden growth, such as temperature, humidity, soil moisture content and important information of garden growth stages; Step 2: Data analysis: The data analysis device is connected to the data collection device, and the soil water shortage is detected during real-time monitoring, and a control signal is sent to the irrigation control device. At the same time, the control center is connected to process and analyze the collected data. The personnel of the control center can judge the current growth status and needs of the garden, and provide a decision-making basis for subsequent irrigation control. Step 3: Irrigation operation and maintenance. The irrigation control device controls the irrigation of the irrigation device according to the result of the data analysis device. It can ensure that the garden gets the right amount of water to meet its growth needs, thus realizing the precise adjustment of the garden growth environment. Step 4: Maintenance and adjustment: Feedback devices are distributed throughout the garden area and connected to the control center to monitor the growth status of the garden after irrigation. The results are fed back to the data analysis device, which performs data analysis in step 2 and adjusts the irrigation strategy when necessary, allowing the entire system to adapt to the ever-changing garden growth environment and needs.

Citation Information

Patent Citations

  • Landscaping maintenance monitoring system

    CN117783434A