A culture device for ecological environment garden greening management
By using modular hexagonal support plates with magnetic adsorption structures, adjustable lifting support legs, and intelligent drainage systems, the spatial adaptability and transportation inconvenience of traditional cultivation devices have been solved, enabling flexible installation and efficient greening.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN ZHENHE LI ECOLOGICAL ENVIRONMENT CO LTD
- Filing Date
- 2025-09-08
- Publication Date
- 2026-07-24
AI Technical Summary
Traditional culture devices have poor spatial adaptability, are inconvenient to transport, and have poor ground adaptability, making it difficult to flexibly adapt to different sites, especially irregular or small spaces. They also have high transportation costs and poor stability.
It adopts a modular hexagonal support plate and magnetic adsorption structure, combined with adjustable lifting support legs and detachable culture tank design, and is equipped with an intelligent drainage system to achieve flexible splicing, stable installation and efficient drainage of the device.
It enables flexible splicing and stable installation of the device, adapts to various terrains and spaces, improves transportation and greening efficiency, reduces manual labor, and is suitable for various urban greening scenarios.
Smart Images

Figure CN224538920U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of landscape greening management and cultivation technology, and in particular to a cultivation device for ecological environment landscape greening management and cultivation. Background Technology
[0002] With the rapid pace of urbanization, ecological landscaping has expanded from traditional parks and green spaces to urban vertical spaces, such as rooftop greening, vertical green walls, greening narrow streets, and community micro-landscapes. These new greening scenarios place higher demands on plant cultivation equipment: lightweight, modular, connectable, adaptable, and easy to transport and install. However, traditional fixed-size cultivation boxes have the following problems: 1. Poor spatial adaptability: Traditional culture devices are mostly fixed structures, making it difficult to flexibly adapt to different sites, especially irregular or small spaces; 2. Inconvenient transportation: Large size, cannot be disassembled or folded, resulting in high transportation costs and low handling efficiency; 3. Poor ground adaptability: It has poor stability in uneven ground environments, making it easy to tip over or affect plant growth; To address these issues, we propose a cultivation device for ecological environment landscaping and greening management. Utility Model Content
[0003] The purpose of this invention is to address the shortcomings of existing technologies by proposing a cultivation device for ecological environment landscaping and greening management.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: A cultivation device for ecological environment landscaping maintenance includes three hexagonal support plates connected to each other by a magnetic adsorption structure. Three threaded sleeves are fixed at equal intervals on the upper end of each hexagonal support plate. A lifting support leg structure is installed inside each threaded sleeve. A fixing ring is fixed to the upper end of the three threaded sleeves. A cultivation tank is threaded onto the fixing ring. A drainage structure is connected to the lower end of the cultivation tank. A cultivation trough is provided inside the cultivation tank.
[0005] Preferably, the magnetic adsorption structure includes six magnetic blocks fixed around the hexagonal support plate, with adjacent magnetic blocks adsorbing each other.
[0006] Preferably, the lifting support leg structure includes a stud threaded into a threaded sleeve, the lower end of the stud penetrating through the hexagonal support plate and extending to the lower end of the hexagonal support plate, and a pad is fixed to the lower end of the stud.
[0007] Preferably, the fixing ring has a threaded through hole in the middle, and the lower end of the culture tank has an external thread, and the external thread and the threaded through hole are screwed together.
[0008] Preferably, the drainage structure includes a conical funnel connected to the lower end of the culture tank, the lower end of the conical funnel is connected to a discharge pipe, the lower end of the discharge pipe abuts against the upper end of the hexagonal support plate, and a valve is installed on the discharge pipe.
[0009] Preferably, the culture tank has an opening on one side, and a cover is installed inside the opening. The four corners of the cover are installed on the culture tank by screws.
[0010] In this utility model, when in use: 1. Modular design and magnetic splicing mechanism: Each panel has a magnetic block around its perimeter, and adjacent panels are joined together by magnetic attraction. The hexagonal structure facilitates multi-directional splicing to form a honeycomb structure, which has a high space utilization rate. It can be freely combined into various layouts such as straight lines, broken lines, and rings, adapting to different terrains and spaces. It can be flexibly spliced to adapt to urban vertical greening and corner space utilization. It is easy to disassemble, transport and maintain, and has strong scalability, making it suitable for large-scale greening projects or home balcony planting. 2. Adjustable lifting support leg system: The threaded sleeve is fixed to the hexagonal support plate. The stud can rotate and rise inside the sleeve. The pad contacts the ground. The height can be adjusted by the stud to adapt to different ground heights. During installation, the support plate is first placed on the ground. The height is finely adjusted by rotating the stud according to the flatness of the ground. The pad is in stable contact with the ground to ensure the stability of the overall structure. This improves the adaptability of the device to complex ground, prevents tilting or tipping, and realizes personalized adjustment of planting height to meet the growth needs of different plants. 3. Detachable connection between the culture tank and the fixing ring: The fixing ring is fixed to the top of the support plate by three threaded sleeves. The bottom of the cultivation bucket is provided with external threads, which cooperate with the threaded through holes on the fixing ring to achieve quick assembly and disassembly. The cultivation bucket can be disassembled separately for easy plant replacement or cleaning. The structure is stable, has a strong load-bearing capacity, and is suitable for long-term planting. 4. Drainage system design: A conical funnel is installed below the cultivation tank to collect excess water. The drain pipe is connected to the surface of the support plate, and the valve controls the drainage rhythm. After watering, excess water is collected through the conical funnel and discharged through the drain pipe. The valve can adjust the drainage rate to avoid waterlogging and root rot. At the same time, the collected excess water can be reused to prevent soil erosion, improve water resource utilization, reduce manual drainage labor, and enhance automated management capabilities. 5. Cover and screw structure: Dual function of maintenance and protection: The cap is installed at the side opening of the cultivation tank to close or open the operating port. It is fixed by four corner screws, making it easy to install and remove. It has good sealing properties and is used for regular fertilization, soil replacement, and observation of plant root growth. It also prevents soil spillage during inclement weather or transportation.
[0011] This utility model has the following advantages: 1. Hexagonal modules can be assembled into wall greening structures, suitable for building facades, balconies, fences, etc. The magnetic structure makes it easy to install and disassemble, suitable for temporary greening projects or event scenery. 2. The modular design allows residents to freely combine different elements on their balconies and in their courtyards to create personalized green spaces. The adjustable support legs are suitable for different height requirements and can accommodate various types of plants. 3. Suitable for narrow streets, sidewalks, medians and other areas with limited space. The drainage system can be connected to the city's drainage system to avoid water accumulation affecting traffic. 4. It can be quickly deployed in ecologically fragile areas such as abandoned land, slopes, and mining areas. Its modular design facilitates transportation and rapid on-site assembly, shortening the greening cycle. 5. Easy to assemble and disassemble, with good sealing performance, it can be used for regular fertilization, soil replacement, and observation of plant root growth, and can prevent soil spillage during inclement weather or transportation; In summary, this utility model effectively solves the problems of poor spatial adaptability and inconvenient transportation of traditional cultivation devices. It has high flexibility, structural stability and good drainage performance, and is suitable for a variety of urban greening scenarios. It not only improves greening efficiency, but also makes it easy for residents to freely combine on balconies and courtyards to create personalized green spaces. The modular design facilitates transportation and rapid on-site assembly, shortening the greening cycle. Attached Figure Description
[0012] Figure 1 This is a diagram of the interconnected structure of this utility model; Figure 2 A structural diagram showing the drainage structure of this utility model; Figure 3 A structural diagram showing the fixing ring and threaded through hole of this utility model; Figure 4 This is a structural diagram of the stud extension of this utility model; Figure 5 This is a diagram of the stud contraction structure of this utility model.
[0013] In the diagram: 1. Screw, 2. Cap, 3. Hexagonal support plate, 4. Stud, 5. Valve, 6. Pad, 7. Culture tank, 8. Fixing ring, 9. Threaded sleeve, 10. Magnetic block, 11. External thread, 12. Conical funnel, 13. Discharge pipe, 14. Threaded through hole, 15. Culture tank. Detailed Implementation
[0014] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0015] Reference Figure 1-5 A cultivation device for ecological environment landscaping maintenance includes three hexagonal support plates 3. The hexagonal support plates 3 have natural geometric stability and their six sides are symmetrical, which makes it easy to achieve seamless splicing in any direction to form a honeycomb-like overall structure, greatly improving space utilization and structural compactness. The three hexagonal support plates 3 are connected to each other by a magnetic adsorption structure. Adjacent plates are spliced together by magnetic adsorption. The hexagonal structure facilitates splicing in multiple directions to form a honeycomb structure, which has high space utilization and can be freely combined into a variety of layouts such as straight lines, broken lines, and rings. Three threaded sleeves 9 are fixed at equal intervals on the upper end of the hexagonal bearing plate 3. A lifting support leg structure is installed inside the threaded sleeves 9. A fixing ring 8 is fixed together on the upper end of the three threaded sleeves 9. The fixing ring 8 and the threaded structure are made of high-strength engineering plastic or metal to ensure that they are not easy to loosen or break during long-term use and can support the heavy load of plants or soil. A cultivation bucket 7 is threaded onto the fixing ring 8. The lower end of the cultivation bucket 7 is connected to a drainage structure. The cultivation bucket 7 is equipped with a cultivation trough 15. Each cultivation bucket 7 can be regarded as an independent planting unit, supporting the combination of different plants to achieve personalized greening and ecological diversity. The magnetic adsorption structure includes six magnetic blocks 10 fixed around the hexagonal support plate 3. Two adjacent magnetic blocks 10 adsorb each other. The magnetic blocks 10 use high-strength neodymium iron boron magnets to provide a stable adsorption force between adjacent support plates, enabling quick assembly and disassembly without additional tools, and facilitating flexible on-site adjustment and transportation and recycling. The lifting support leg structure includes a stud 4 threaded into a threaded sleeve 9. The lower end of the stud 4 passes through the hexagonal support plate 3 and extends to the lower end of the hexagonal support plate 3. A pad 6 is fixed to the lower end of the stud 4. By rotating and adjusting the length of the stud 4, the support plate can be finely adjusted and raised. It is suitable for uneven ground surfaces (such as stone slabs, grass, slopes, etc.). The pad 6 is made of rubber or soft engineering plastic material, which has good anti-slip performance and ground adaptability, prevents the device from sliding or tilting, and avoids causing indentations or damage to the ground. The middle part of the fixing ring 8 is provided with a threaded through hole 14, and the lower end of the culture tank 7 is provided with an external thread 11. The external thread 11 and the threaded through hole 14 are screwed together. The design of the external thread and the internal thread ensures the stability and sealing of the connection, while facilitating quick disassembly and replacement. It is suitable for frequent changes of plant varieties or maintenance scenarios. The drainage structure includes a conical funnel 12 connected to the lower end of the cultivation tank 7. The lower end of the conical funnel 12 is connected to a discharge pipe 13. The lower end of the discharge pipe 13 abuts against the upper end of the hexagonal support plate 3. A valve 5 is installed on the discharge pipe 13. After watering, excess water is collected through the conical funnel 12 and discharged through the discharge pipe 13 to the surface of the support plate or a water collection container. The valve 5 can adjust the drainage rate to achieve intelligent drainage management. A filter screen is installed at the end of the discharge pipe 13 to prevent soil particles or impurities from clogging the pipe. Valve 5 can be an electric valve or a manual valve as needed to achieve intelligent drainage control. The cultivation container 7 has an opening on one side, and a cover 2 is installed inside the opening. The four corners of the cover 2 are installed on the cultivation container 7 by screws 1. The cover 2 adopts a detachable design, which makes it easy to regularly check the plant roots, change the soil or add fertilizer. The four corner screw fixing method provides a good sealing effect to prevent water evaporation and soil loss, and is suitable for plant management needs at different growth stages. In this utility model, when in use: 1. Modular design and magnetic splicing mechanism: Each board has 6 magnetic blocks around its perimeter, and adjacent boards are joined together by magnetic attraction. The hexagonal structure facilitates multi-directional splicing to form a honeycomb structure, which has a high space utilization rate. It can be freely combined into various layouts such as straight lines, broken lines, and rings, adapting to different terrains and spaces. It can be flexibly spliced to adapt to urban vertical greening and corner space utilization. It is easy to disassemble, transport and maintain, and has strong scalability, making it suitable for large-scale greening projects or home balcony planting. 2. Adjustable lifting support leg system The threaded sleeve 9 is fixed on the hexagonal support plate 3. The stud 4 can rotate and rise inside the sleeve. The pad 6 contacts the ground. The height can be adjusted by the stud to adapt to different ground height differences. During installation, the support plate is first placed on the ground. The height is finely adjusted by rotating the stud according to the flatness of the ground. The pad is in stable contact with the ground to ensure the stability of the overall structure, improve the adaptability of the device to complex ground, prevent tilting or tipping, realize personalized adjustment of planting height, and meet the growth needs of different plants. 3. Detachable connection between the culture tank and the fixing ring: The fixing ring 8 is fixed to the top of the support plate by three threaded sleeves 9. The lower part of the cultivation bucket 7 is provided with external threads 11, which cooperate with the threaded through holes 14 on the fixing ring to achieve quick disassembly and assembly. The cultivation bucket can be disassembled separately, which is convenient for replacing plants or cleaning. The structure is stable, has a strong load-bearing capacity, and is suitable for long-term planting. 4. Drainage system design: A conical funnel is installed below the cultivation tank to collect excess water. The drain pipe is connected to the surface of the support plate, and valve 5 controls the drainage rhythm. After watering, excess water is collected through the conical funnel and discharged through the drain pipe. The valve can adjust the drainage rate to avoid water accumulation and root rot. At the same time, excess water is collected for reuse, preventing soil erosion, improving water resource utilization, reducing manual drainage labor, and enhancing automated management capabilities. 5. Cover and screw structure: Dual function of maintenance and protection: The cap is installed at the side opening of the cultivation tank to close or open the operating port. It is fixed by four corner screws, making it easy to install and remove. It has good sealing properties and is used for regular fertilization, soil replacement, and observation of plant root growth. It also prevents soil spillage during inclement weather or transportation.
[0016] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and inventive concept of this utility model, should be included within the scope of protection of this utility model.
Claims
1. A cultivation device for ecological environment landscaping and greening maintenance, comprising three hexagonal support plates (3), characterized in that, Three hexagonal support plates (3) are connected to each other by a magnetic adsorption structure. Three threaded sleeves (9) are fixed at equal intervals on the upper end of the hexagonal support plate (3). A lifting support leg structure is installed inside the threaded sleeves (9). A fixing ring (8) is fixed to the upper end of the three threaded sleeves (9). A culture tank (7) is threaded onto the fixing ring (8). A drainage structure is connected to the lower end of the culture tank (7). A culture tank (15) is provided inside the culture tank (7).
2. The cultivation device for ecological environment landscaping and greening management according to claim 1, characterized in that: The magnetic adsorption structure includes six magnetic blocks (10) fixed around the hexagonal support plate (3), with adjacent magnetic blocks (10) adsorbing each other.
3. The cultivation device for ecological environment landscaping and greening management according to claim 1, characterized in that: The lifting support leg structure includes a stud (4) threaded into a threaded sleeve (9), the lower end of the stud (4) passing through the hexagonal bearing plate (3) and extending to the lower end of the hexagonal bearing plate (3), and a pad (6) is fixed to the lower end of the stud (4).
4. The cultivation device for ecological environment landscaping and greening management according to claim 1, characterized in that: The fixing ring (8) has a threaded through hole (14) in the middle, and the culture tank (7) has an external thread (11) around its lower end. The external thread (11) and the threaded through hole (14) are screwed together.
5. The cultivation device for ecological environment landscaping maintenance according to claim 1, characterized in that: The drainage structure includes a conical funnel (12) connected to the lower end of the culture tank (7), the lower end of the conical funnel (12) is connected to a discharge pipe (13), the lower end of the discharge pipe (13) abuts against the upper end of the hexagonal support plate (3), and a valve (5) is installed on the discharge pipe (13).
6. The cultivation device for ecological environment landscaping and greening management according to claim 1, characterized in that: The culture tank (7) has an opening on one side, and a cover (2) is installed in the opening. The four corners of the cover (2) are installed on the culture tank (7) by screws (1).