A drip irrigation system for partition structures
Patent Information
- Application Number
- CN202522104438.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-29
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-09-29
AI Technical Summary
当需要对植物进行滴灌时,需要搭建滴灌系统与固定位置的水源相连接,这样不仅需要耗费人力物力进行搭建,而且灵活性较低,与隔断的灵活性的需求完全相反
[0021]1. In this utility model, the cavity inside the partition body is fully utilized as the core support, and the drip irrigation pipe is connected to the cavity. There is no need to build a complex external water supply structure, nor is it necessary to rely on a water source in a fixed location. This fundamentally solves the problems of traditional drip irrigation systems that require manpower and material resources to build and have low flexibility.
Smart Images

Figure CN224698469U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of partition structure technology, and specifically to a drip irrigation system for partition structures. Background Technology
[0002] In modern architectural decoration, urban landscape design, and commercial space planning, partition structures are increasingly widely used due to their multiple functions of spatial division, functional zoning, and environmental beautification. To enhance the ecological integrity and visual comfort of spaces, more and more partition structures are integrating planting functions, that is, setting up planting areas on the main body of the partition to achieve a composite effect of functional partitioning and ecological greening through the cultivation of greenery. These partition structures with planting functions have become one of the mainstream choices for office spaces, shopping malls, courtyards, and urban road medians. However, in practical applications, the irrigation problem has long been a challenge in the maintenance of these partition structures with planting functions.
[0003] Traditional partition structures primarily focus on structural stability and spatial separation, neglecting the adaptability to plant irrigation. This is mainly reflected in the fact that the partition itself typically lacks a dedicated water delivery and storage structure. When drip irrigation is needed, a drip irrigation system must be built and connected to a fixed water source. This not only requires significant manpower and resources for construction but also offers limited flexibility, completely contradicting the need for flexibility in partitions.
[0004] In summary, there is a lack of drip irrigation systems on the market that can be deeply adapted to the partition structure, achieve stable water supply using the partition cavity, and maintain the flexibility of the partition structure. There is an urgent need for a drip irrigation system specifically adapted to the partition structure. Utility Model Content
[0005] The purpose of this invention is to provide a drip irrigation system for partition structures in order to solve the problems existing in the prior art.
[0006] In order to solve the problems existing in the prior art, the present invention adopts the following technical solution:
[0007] A drip irrigation system for a partition structure, the partition structure including a partition body, the interior of the partition body forming a cavity, and the upper part of the partition body forming a planting area for planting plants;
[0008] The drip irrigation system for the partition structure includes a drip irrigation device and a drive control device for controlling the drip irrigation device, wherein the drip irrigation device and the drive control device are connected.
[0009] The drip irrigation device includes a drip irrigation pipe connected to the cavity, and multiple spray heads are provided on the drip irrigation pipe, with the multiple spray heads aimed at the planting area.
[0010] As an improvement to the technical solution of the drip irrigation system for the partition structure of this utility model, the drive control device includes a drive device and a control device.
[0011] The driving device includes a power supply, an electronic water level sensor, and a water pump, all of which are connected to the control device. The control device includes a control terminal and an intelligent control device that is wirelessly connected to the control terminal.
[0012] As an improvement to the technical solution of the drip irrigation system for the partition structure of this utility model, the intelligent control device includes an AI drip irrigation system main control processor and a water pump control processor, a water level control processor, an IC power processor and a wireless receiver processor respectively connected to the AI drip irrigation system main control processor.
[0013] The water pump control processor is connected to the water pump, the water level control processor is connected to the electronic water level sensor, the IC power processor is connected to the power supply, and the wireless receiver processor is connected to the control terminal.
[0014] As an improvement to the technical solution of the drip irrigation system for the partition structure of this utility model, the control terminal is a touch electronic display screen.
[0015] As an improvement to the technical solution of the drip irrigation system for the partition structure of this utility model, the power source is a storage battery.
[0016] As an improvement to the technical solution of the drip irrigation system with partition structure of this utility model, the partition body includes a frame and a panel;
[0017] The frame and the panel form at least two cavities, each including a first cavity for loading water and a second cavity for placing the drive control device. The first cavity and the second cavity are arranged side by side or stacked.
[0018] As an improvement to the technical solution of the drip irrigation system for the partition structure of this utility model, a recessed portion is formed on the upper part of the partition body, and the planting area is formed correspondingly in the recessed portion.
[0019] As an improvement to the technical solution of the drip irrigation system for the partition structure of this utility model, the first cavity is disposed at the lower part of the partition body, the second cavity is disposed above the first cavity, and the planting area is disposed above the second cavity.
[0020] The beneficial effects of this utility model are:
[0021] 1. In this utility model, the cavity inside the partition body is fully utilized as the core support, and the drip irrigation pipe is connected to the cavity. There is no need to build a complex external water supply structure, nor is it necessary to rely on a water source in a fixed location. This fundamentally solves the problems of traditional drip irrigation systems that require manpower and material resources to build and have low flexibility.
[0022] 2. In this utility model, the drip irrigation system and the partition structure form an organic whole, which will not damage the structural stability and spatial division function of the partition body, and can realize the storage and transportation of water through the cavity, ensuring a stable water supply to the plants. This avoids the drawbacks of the partition being affected by messy external pipelines or the partition being unable to be flexibly adjusted due to a fixed water source, perfectly meeting the partition structure's need for flexibility. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of the partition body in this utility model;
[0024] Figure 2 This is a schematic diagram of the left perspective structure of an embodiment of the present invention;
[0025] Figure 3 This is a front-view perspective structural diagram of an embodiment of the present invention;
[0026] Figure 4 This is a schematic diagram of the structure of this utility model;
[0027] Figure 5 This is a connection diagram of the drive control device in this utility model.
[0028] Explanation of reference numerals in the attached drawings: 1-Partition body; 2-Cavity; 3-Planting area; 4-Drip irrigation pipe; 5-Sprinkler head; 6-Power supply; 7-Electronic water level gauge; 8-Water pump; 9-Control device; 10-Control terminal; 11-AI drip irrigation system main control processor; 12-Water pump control processor; 13-Water level control processor; 14-IC power processor; 15-Wireless receiver processor; 17-Water inlet; 18-Frame; 19-Panel; 20-Recess; 21-First cavity; 22-Second cavity; 23-Water body. Detailed Implementation
[0029] To make the invention objective, technical solution and beneficial effects of this utility model clearer, the technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments.
[0030] like Figures 1 to 5As shown, a drip irrigation system for a partition structure is provided. The partition structure includes a partition body 1, a cavity 2 is formed inside the partition body 1, and a planting area 3 for planting plants is formed on the upper part of the partition body 1.
[0031] A drip irrigation system for a partition structure includes a drip irrigation device and a drive control device 9 for controlling the drip irrigation device, wherein the drip irrigation device and the drive control device 9 are connected.
[0032] The drip irrigation device includes a drip irrigation pipe 4 connected to the cavity 2, and multiple spray heads 5 are installed on the drip irrigation pipe 4, which are aimed at the planting area 3.
[0033] In this utility model, the cavity 2 inside the partition body 1 is fully utilized as the core support, and the drip irrigation pipe 4 is connected to the cavity 2. There is no need to build a complicated external water supply structure, nor is it necessary to rely on a water source in a fixed location. This fundamentally solves the problems of traditional drip irrigation systems that require manpower and material resources to build and have low flexibility. Moreover, the drip irrigation system and the partition structure form an organic whole. It will not damage the structural stability and spatial division function of the partition body 1, and can realize the storage and transportation of water through the cavity 2, ensuring a stable water supply to the plants. This avoids the drawbacks of the partition being affected by messy external pipelines or the partition being unable to be flexibly adjusted due to a fixed water source. It perfectly meets the flexibility requirements of the partition structure.
[0034] In some embodiments of this utility model, the drive control device 9 includes a drive device and a control device 9; the drive device includes a power supply 6, an electronic water level sensor 7 and a water pump 8 respectively connected to the control device 9; the control device 9 includes a control terminal 10 and an intelligent control device wirelessly connected to the control terminal 10.
[0035] Furthermore, the intelligent control device includes an AI drip irrigation system main control processor 11 and a water pump control processor 12, a water level control processor 13, an IC power processor 14, and a wireless receiver processor 15, which are respectively connected to the AI drip irrigation system main control processor 11.
[0036] Among them, the water pump control processor 12 is connected to the water pump 8, the water level control processor 13 is connected to the electronic water level sensor 7, the IC power processor 14 is connected to the power supply 6, and the wireless receiver processor 15 is connected to the control terminal 10.
[0037] In this embodiment, the drive control device 9 serves as the power and control system of this utility model, providing automation and intelligence for this utility model.
[0038] The power supply 6, electronic water level sensor 7, and water pump 8 in the drive device are respectively connected to the IC power processor 14, water level control processor 13, and water pump control processor 12 in the control device 9. The power supply 6 can be started and stopped by the IC power processor 14, and the water pump 8 can be started and stopped by the water pump control processor 12. The preset liquid level data can also be set in the main control processor 11 of the AI drip irrigation system. The real-time liquid level data in the cavity 2 is obtained through the electronic water level sensor 7, and the liquid level data is transmitted to the water level control processor 13. The water level control processor 13 transmits the data to the main control processor 11 of the AI drip irrigation system. When the real-time liquid level data reaches the preset liquid level data, the main control processor 11 of the AI drip irrigation system sends a warning signal to the control terminal 10 to remind the user to add water to the cavity 2.
[0039] Preferably, the control terminal 10 is a touch screen electronic display, which makes it convenient for users to perform control operations and also allows them to understand the usage of this utility model through the touch screen electronic display.
[0040] Preferably, the power source 6 is a storage power source 6, which not only ensures the normal use of the entire utility model, but also allows the utility model to be separated from the fixed power source 6, thus improving the flexibility of the utility model.
[0041] Multiple holes can be opened on the partition body 1. These holes can be used to install drip irrigation pipes 4 or to facilitate the installation of drive and control devices 9, such as facilitating the connection between electronic water level sensor 7 and water level control processor 13.
[0042] In some embodiments of this utility model, the partition body 1 includes a frame 18 and a panel 19; the frame 18 and the panel 19 form at least two cavities 2, and the at least two cavities 2 include a first cavity 21 for loading water 23 and a second cavity 222 for placing a drive control device 9, and the first cavity 21 and the second cavity 222 are arranged side by side or stacked.
[0043] As a specific embodiment of this implementation, a recessed portion 20 is formed on the upper part of the partition body 1, and a planting area 3 is formed correspondingly in the recessed portion 20.
[0044] In detail, in this embodiment, a recessed portion 20 is formed in the upper part of the partition body 1, and a planting area 3 is formed in the recessed portion 20. Since the partition body 1 includes a frame 18 and a panel 19, multiple cavities 2 are formed by the frame 18 and the panel 19. The recessed portion 20 can be a non-sealed cavity 2 in the upper part of the partition body 1, in which plants can be directly planted; or the frame 18 can be used to form a frame, and since it is only a frame, a container for planting plants can be placed inside the frame.
[0045] As another specific embodiment of this implementation, the first cavity 21 is disposed at the lower part of the partition body 1, the second cavity 222 is disposed above the first cavity 21, and the planting area 3 is disposed above the second cavity 222.
[0046] To better optimize the design of the partition body 1 and improve the synergy between the partition body 1 and the drip irrigation system, the partition body 1 includes two cavities 2: a first cavity 21 and a second cavity 222. The first cavity 21 is located at the lower part of the partition body 1 and is used to hold water 23. This not only achieves the effect of storing water 23 within the partition body 1 but also improves the stability of the partition body 1. The second cavity 222 is located above the first cavity 21, that is, the first cavity 21 and the second cavity 222 are stacked. The drive control device 9 is located inside the second cavity 222, and the planting area 3 is located above the second cavity 222. In this way, not only is the overall performance of this utility model guaranteed and its flexibility ensured during use, but it also achieves the effect of adapting to the depth of the partition structure, enabling stable water supply using the partition cavities 2, and maintaining the flexibility of the partition structure.
[0047] In a specific embodiment of this utility model, during use, water 23 is stored in the first cavity 21, and an energy storage battery is installed in the second cavity 222 to power the drip irrigation system. When drip irrigation is needed for the plants in the planting area, the control terminal 10 sends a command to the AI drip irrigation system main controller in the drive control device 9 to start the motor and water pump 8 to drip irrigate the plants in the planting area. When the real-time liquid level data reaches the preset liquid level data, the AI drip irrigation system main controller processor 11 sends a warning signal to the control terminal 10 to remind the user to add water to the cavity 2.
[0048] Furthermore, a water inlet 17 is provided on the partition body 1 so that users can add water to the cavity 2.
[0049] Based on the 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.
Claims
1. A drip irrigation system for a partition structure, characterized in that, The partition structure includes a partition body, the interior of which forms a cavity, and the upper part of which forms a planting area for planting plants; The drip irrigation system for the partition structure includes a drip irrigation device and a drive control device for controlling the drip irrigation device, wherein the drip irrigation device and the drive control device are connected. The drip irrigation device includes a drip irrigation pipe connected to the cavity, and multiple spray heads are provided on the drip irrigation pipe, with the multiple spray heads aimed at the planting area.
2. The drip irrigation system for partition structures according to claim 1, characterized in that, The drive control device includes a drive device and a control device; The driving device includes a power supply, an electronic water level sensor, and a water pump, all of which are connected to the control device. The control device includes a control terminal and an intelligent control device that is wirelessly connected to the control terminal.
3. The drip irrigation system for a partition structure according to claim 2, characterized in that, The intelligent control device includes an AI drip irrigation system main control processor and a water pump control processor, a water level control processor, an IC power processor, and a wireless receiver processor, all connected to the AI drip irrigation system main control processor. The water pump control processor is connected to the water pump, the water level control processor is connected to the electronic water level sensor, the IC power processor is connected to the power supply, and the wireless receiver processor is connected to the control terminal.
4. The drip irrigation system for a partition structure according to claim 2, characterized in that, The control terminal is a touch screen electronic display.
5. The drip irrigation system for a partition structure according to claim 2, characterized in that, The power source is an energy storage battery.
6. The drip irrigation system for a partition structure according to claim 1, characterized in that, The partition body includes a frame and a panel; The frame and the panel form at least two cavities, each including a first cavity for loading water and a second cavity for placing the drive control device. The first cavity and the second cavity are arranged side by side or stacked.
7. The drip irrigation system for a partition structure according to claim 6, characterized in that, The upper part of the partition body forms a recessed portion, and the planting area is formed correspondingly in the recessed portion.
8. The drip irrigation system for a partition structure according to claim 6, characterized in that, The first cavity is located at the lower part of the partition body, the second cavity is located above the first cavity, and the planting area is located above the second cavity.