Internet of Things irrigation soil humidity regulation and control device convenient to install

By incorporating a threaded splicing ring and locking knob design, combined with a soil moisture sensor and a solar-powered IoT irrigation device, the problems of inconvenient pipe adjustment and unstable installation in existing systems have been solved. This enables rapid assembly and stable installation, improving the system's adaptability and intelligent use.

CN224154843UActive Publication Date: 2026-04-24HENAN LINGYU INFORMATION ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HENAN LINGYU INFORMATION ENG CO LTD
Filing Date
2025-05-26
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Existing network-based irrigation systems cannot adapt to and extend pipelines, making installation inconvenient, unstable, and difficult to use.

Method used

It adopts a threaded splicing ring and threaded splicing groove design, combined with installation plugs and locking knobs, to achieve quick assembly and disassembly of horizontal and vertical irrigation pipes. It integrates a soil moisture sensor and is electrically connected to the control box, which is powered by a solar-powered mechanism. The control box has a built-in wireless communication module and a smart gateway.

Benefits of technology

It enables rapid extension and stable installation of pipelines, and quick disassembly and assembly of soil moisture sensors, improving the adaptability and stability of the device, and enhancing the intelligence and convenience of the system.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224154843U_ABST
Patent Text Reader

Abstract

The utility model discloses an internet of things irrigation soil humidity regulation and control device convenient to install, which comprises a control box, a soil humidity sensor is installed on the inner wall of a sensor installation groove in an inserted mode, one end of the soil humidity sensor is electrically connected with a connecting wire, and a clamping block is installed on the outer wall of the connecting wire in a sleeved mode. One end of the clamping block is fixedly connected with the outer wall of the vertical irrigation pipe, the other end of the connecting wire is electrically connected with the control box, and the outer wall of the transverse irrigation pipe and the outer wall of the vertical irrigation pipe are wrapped with wrapping blocks. According to the internet-of-things irrigation soil humidity regulation and control device convenient to install, the transverse irrigation pipe and the vertical irrigation pipe can be rapidly extended and combined for use through the threaded splicing rings and the threaded splicing grooves, the adaptability is good, the transverse irrigation pipe and the vertical irrigation pipe can be rapidly inserted and installed through the installation insertion blocks, installation is stable, and the use is convenient. And the soil humidity sensor can be quickly and stably disassembled and assembled through the sensor mounting groove and the locking knob, so that the use effect is better.
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Description

Technical Field

[0001] This utility model relates to the field of agricultural irrigation technology, specifically to an easy-to-install Internet of Things (IoT) irrigation soil moisture control device. Background Technology

[0002] Most irrigation systems currently on the market use timed irrigation, where the spraying time, spraying duration, spraying flow rate, etc., are set on the time controller through preset or manual adjustment.

[0003] The existing network-based irrigation system CN201711076994.5 can irrigate according to different soil moisture and the standard growth suitable humidity for different crops. However, it has shortcomings. The existing equipment cannot be adapted to extend and adjust the pipeline, and it is inconvenient to install, unstable, and inconvenient to use. Therefore, an easy-to-install IoT irrigation soil moisture control device is needed to solve the above problems. Utility Model Content

[0004] The purpose of this utility model is to provide an easy-to-install Internet of Things (IoT) irrigation soil moisture control device to solve the problems mentioned in the background art, such as the inability of network-based irrigation systems to adapt and extend the pipeline, and the inconvenience of installation, instability, and use.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an easy-to-install IoT irrigation soil moisture control device, comprising a control box, an outlet pipe connected to the front of the control box, and an inlet pipe connected to the rear of the control box. A solar panel is electrically connected to the upper end of the control box. A solenoid valve is connected to the middle of the outlet pipe, and a horizontal irrigation pipe is connected to the other end of the outlet pipe. A vertical irrigation pipe is vertically connected to the other side of the horizontal irrigation pipe. A threaded splicing ring is protruding and fixedly connected to one edge of the horizontal irrigation pipe and one edge of the vertical irrigation pipe. Threaded splicing grooves are formed on the other edges of the horizontal and vertical irrigation pipes. The connecting ring is installed by inserting it into the threaded splice groove. A threaded groove is opened on one side of the vertical irrigation pipe, and a threaded rod is inserted into the inner wall of the threaded groove. An installation block is fixedly connected to the lower end of the threaded rod. A sensor installation groove is fixedly connected to the other side of the vertical irrigation pipe, and locking knobs are inserted into the two sides of the sensor installation groove. A soil moisture sensor is inserted into the inner wall of the sensor installation groove, and a connecting wire is electrically connected to one end of the soil moisture sensor. A clamping block is sleeved on the outer wall of the connecting wire, and one end of the clamping block is fixedly connected to the outer wall of the vertical irrigation pipe. The other end of the connecting wire is electrically connected to the control box. A wrapping block is installed on the outer wall of the horizontal irrigation pipe and the vertical irrigation pipe.

[0006] Preferably, the control box integrates a wireless communication module, a smart gateway, and a pump room structure, and the control box is electrically connected to the solar energy mechanism, which is a symmetrical tilted structure.

[0007] Preferably, the horizontal irrigation pipes and the vertical irrigation pipes are connected and installed in a screw-on, sealed manner through threaded splicing rings and threaded splicing grooves, and the vertical irrigation pipes are integrated with a spray head structure.

[0008] Preferably, the mounting block has a spiral conical structure, and the mounting block is screwed and spliced ​​with the horizontal irrigation pipe and the vertical irrigation pipe through a threaded groove and a threaded rod.

[0009] Preferably, the soil moisture sensor and the connecting wire are installed and locked in the sensor mounting slot at an angle by a locking knob, and the connecting wire is installed and clamped to the horizontal irrigation pipe and the vertical irrigation pipe by a clamping block.

[0010] Preferably, the wrapping block is made of thermal insulation cotton, and the wrapping block is distributed in a surrounding manner with the horizontal irrigation pipe and the vertical irrigation pipe.

[0011] Compared with the prior art, the beneficial effects of this utility model are: the easy-to-install IoT irrigation soil moisture control device can quickly extend and combine horizontal and vertical irrigation pipes through threaded splicing rings and threaded splicing grooves, with good adaptability. Moreover, the horizontal and vertical irrigation pipes can be quickly inserted and installed through the installation blocks, ensuring stable installation. Furthermore, the soil moisture sensor can be quickly and stably installed and removed through the sensor installation slot and locking knob, resulting in better performance. Attached Figure Description

[0012] Figure 1 This is a top view of an IoT-based soil moisture control device for easy installation, according to this utility model.

[0013] Figure 2 This is a schematic diagram of the vertical irrigation pipe assembly connection of an IoT-based soil moisture control device for easy installation according to this utility model.

[0014] Figure 3 This is a side view of the internal structure of the vertical irrigation pipe of an IoT-based soil moisture control device for easy installation, according to this utility model.

[0015] Figure 4 This utility model relates to an easy-to-install IoT-based soil moisture control device for irrigation. Figure 2 Enlarged view of point A in the middle;

[0016] Figure 5 This utility model relates to an easy-to-install IoT-based soil moisture control device for irrigation. Figure 3 Enlarged view at point B in the middle;

[0017] Figure 6 This utility model relates to an easy-to-install IoT-based soil moisture control device for irrigation. Figure 3 Enlarged view at point C;

[0018] Figure 7 This utility model relates to an easy-to-install IoT-based soil moisture control device for irrigation. Figure 3 Enlarged view of point D in the middle.

[0019] In the diagram: 1. Control box, 2. Solar panel mechanism, 3. Inlet pipe, 4. Outlet pipe, 5. Solenoid valve, 6. Horizontal irrigation pipe, 7. Vertical irrigation pipe, 8. Mounting plug, 9. Sensor mounting slot, 10. Soil moisture sensor, 11. Threaded splicing ring, 12. Threaded splicing groove, 13. Wrapping block, 14. Locking knob, 15. Clamping block, 16. Connecting wire, 17. Threaded groove, 18. Threaded rod. Detailed Implementation

[0020] 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.

[0021] Please see Figure 1-7This utility model provides a technical solution: an easy-to-install IoT irrigation soil moisture control device, including a control box 1, a solar panel mechanism 2, an inlet pipe 3, an outlet pipe 4, a solenoid valve 5, a horizontal irrigation pipe 6, a vertical irrigation pipe 7, a mounting block 8, a sensor mounting slot 9, a soil moisture sensor 10, a threaded splicing ring 11, a threaded splicing groove 12, a wrapping block 13, a locking knob 14, a clamping block 15, a connecting wire 16, a threaded groove 17, and a threaded rod 18. The outlet pipe 4 is connected to the front of the control box 1, and the inlet pipe 3 is connected to the rear of the control box 1. The control box 1 integrates a wireless communication module, a smart gateway, and a pump room structure. The control box 1 is electrically connected to the solar panel mechanism 2, which has a symmetrical inclined structure. This allows control box 1 to be networked for easier and smarter operation. The upper part of control box 1 is electrically connected to a solar panel mechanism 2. A solenoid valve 5 is installed in the middle of the water outlet pipe 4, and a horizontal irrigation pipe 6 is installed at the other end of the water outlet pipe 4. The horizontal irrigation pipes 6 and the vertical irrigation pipes 7 are connected and sealed by threaded splicing rings 11 and threaded splicing grooves 12. The vertical irrigation pipe 7 integrates a spray head structure, allowing for quick combination, extension, and adjustment of the horizontal and vertical irrigation pipes 6, providing excellent adaptability. A vertical irrigation pipe 7 is vertically connected to the other side of the horizontal irrigation pipe 6, and a threaded splicing ring 11 protrudes and is fixedly connected to one edge of the horizontal irrigation pipe 6 and one edge of the vertical irrigation pipe 7. A threaded splicing groove 12 is provided on the other edge of the vertical irrigation pipe 7. The threaded splicing ring 11 is inserted into the threaded splicing groove 12 for installation. A threaded groove 17 is provided on one side of the vertical irrigation pipe 7, and a threaded rod 18 is inserted into the inner wall of the threaded groove 17. An installation block 8 is fixedly connected to the lower end of the threaded rod 18. The installation block 8 has a spiral conical structure, and the installation block 8 is screwed into the horizontal irrigation pipe 6 and the vertical irrigation pipe 7 through the threaded groove 17 and the threaded rod 18. This allows the installation block 8 to quickly and stably insert and install the horizontal irrigation pipe 6 and the vertical irrigation pipe 7, and to quickly screw and disassemble for replacement. A sensor mounting groove 9 is fixedly connected to the other side of the vertical irrigation pipe 7, and locking knobs 14 are inserted into the edges of both sides of the sensor mounting groove 9. A soil moisture sensor 10 is inserted and installed into the inner wall of the sensor mounting slot 9. One end of the soil moisture sensor 10 is electrically connected to a connecting wire 16. The soil moisture sensor 10 and the connecting wire 16 are locked in place by a locking knob 14 at an angle to the sensor mounting slot 9. The connecting wire 16 is clamped and spliced ​​with the horizontal irrigation pipe 6 and the vertical irrigation pipe 7 by a clamping block 15. This allows for quick insertion and locking of the soil moisture sensor 10 and the connecting wire 16, ensuring stable operation. The connecting wire 16 can also be fastened for a better installation effect. A clamping block 15 is fitted onto the outer wall of the connecting wire 16, with one end of the clamping block 15 fixedly connected to the outer wall of the vertical irrigation pipe 7, and the other end of the connecting wire 16 electrically connected to the control box 1.The outer walls of the horizontal irrigation pipe 6 and the vertical irrigation pipe 7 are wrapped with insulating blocks 13. The insulating blocks 13 are made of thermal insulation cotton and are arranged in a ring around the horizontal irrigation pipe 6 and the vertical irrigation pipe 7, thus providing complete protection and ensuring safe use.

[0022] Working principle: When using this easy-to-install IoT irrigation soil moisture control device, firstly, assemble and install the device. Then, according to the length and width of the land, combine and extend the horizontal irrigation pipe 6 and vertical irrigation pipe 7 using threaded splicing rings 11 and threaded splicing grooves 12. Next, insert the soil moisture sensor 10 into the sensor mounting groove 9 and lock it in place using the locking knob 14. Then, clamp and fix the connecting wire 16 using the clamping block 15 and electrically connect it to the control box 1. Next, quickly insert the mounting block 8 into the soil and insert the soil moisture sensor 10 into the soil. Then it can be used. The soil moisture sensor 10 detects the soil moisture. When irrigation is needed, the solenoid valve 5 can be opened to spray water. This is the usage process of this easy-to-install IoT irrigation soil moisture control device.

[0023] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An easy-to-install IoT irrigation soil moisture control device, comprising a control box (1), wherein a water outlet pipe (4) is connected to the front side of the control box (1) and a water inlet pipe (3) is connected to the rear side of the control box (1), characterized in that: The control box (1) is electrically connected to a solar energy mechanism (2) at its upper end. A solenoid valve (5) is installed in the middle of the water outlet pipe (4), and a horizontal irrigation pipe (6) is installed at the other end of the water outlet pipe (4). A vertical irrigation pipe (7) is installed vertically on the other side of the horizontal irrigation pipe (6). A threaded splicing ring (11) is fixedly connected to one end edge of the horizontal irrigation pipe (6) and one end edge of the vertical irrigation pipe (7). A threaded splicing groove (12) is opened on the other end edge of the horizontal irrigation pipe (6) and the other end edge of the vertical irrigation pipe (7). The threaded splicing ring (11) is inserted into the threaded splicing groove (12). A threaded groove (17) is opened on one side of the vertical irrigation pipe (7), and a threaded rod is inserted into the inner wall of the threaded groove (17). 18), the lower end of the threaded rod (18) is fixedly connected to the mounting block (8), the other side of the vertical irrigation pipe (7) is fixedly connected to the sensor mounting groove (9), and the two sides of the sensor mounting groove (9) are fitted with locking knobs (14). The inner wall of the sensor mounting groove (9) is fitted with a soil moisture sensor (10), and one end of the soil moisture sensor (10) is electrically connected to a connecting wire (16). The outer wall of the connecting wire (16) is fitted with a clamping block (15), and one end of the clamping block (15) is fixedly connected to the outer wall of the vertical irrigation pipe (7). The other end of the connecting wire (16) is electrically connected to the control box (1). The outer walls of the horizontal irrigation pipe (6) and the vertical irrigation pipe (7) are wrapped with a wrapping block (13).

2. The IoT-based soil moisture control device for irrigation, which is easy to install, as described in claim 1, is characterized in that: The control box (1) is an integrated wireless communication module, intelligent gateway and pump room structure, and the control box (1) is electrically connected to the solar energy mechanism (2), which is a symmetrical inclined structure.

3. The IoT-based soil moisture control device for irrigation, which is easy to install, as described in claim 2, is characterized in that: The horizontal irrigation pipes (6) and the vertical irrigation pipes (7) are connected and installed in a screw-on, sealed manner through threaded splicing rings (11) and threaded splicing grooves (12). The vertical irrigation pipes (7) are integrated with a spray head structure.

4. The IoT-based soil moisture control device for irrigation, which is easy to install, as described in claim 3, is characterized in that: The mounting block (8) has a spiral conical structure, and the mounting block (8) is screwed and spliced ​​with the horizontal irrigation pipe (6) and the vertical irrigation pipe (7) through the threaded groove (17) and threaded rod (18).

5. The IoT-based soil moisture control device for irrigation, which is easy to install, as described in claim 4, is characterized in that: The soil moisture sensor (10) and the connecting wire (16) are installed in an inclined position by locking knob (14) into the sensor mounting slot (9), and the connecting wire (16) is installed in a clamping and splicing manner with the horizontal irrigation pipe (6) and the vertical irrigation pipe (7) by clamping block (15).

6. The IoT-based soil moisture control device for irrigation, which is easy to install, as described in claim 5, is characterized in that: The wrapping block (13) is made of thermal insulation cotton, and the wrapping block (13) is distributed around the horizontal irrigation pipe (6) and the vertical irrigation pipe (7).

Citation Information

Patent Citations

  • Irrigation system based on network technology

    CN109743945A