Green planting device

By designing a second planting element with an adjustable position, the problems of uneven lighting and watering difficulties in multi-layer planting are solved, thereby improving plant growth quality and management efficiency.

CN223541013UActive Publication Date: 2025-11-14SHAANXI ZHONGJIAN YINGHAI CONSTRUCTION ENGINEERING CO LTD
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Patent Information

Application Number
CN202422650909.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-11-14
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

When existing greening planting devices are used for multi-layer planting, the light intensity of the plants in the upper and lower layers is uneven and watering is difficult, which affects the quality of plant growth.

Method used

By designing a second planting element that can move radially and axially, the position of the planting element on the planting rack can be adjusted to ensure that each layer of plants receives sufficient light and is easy to manage.

Benefits of technology

This allows for more efficient use of light resources, ensuring that each layer of plants receives the necessary sunlight, improving plant growth quality, facilitating watering management, and enhancing the aesthetic appeal.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a green planting device. The green planting device comprises a planting frame; the planting structure comprises a first planting part and a plurality of second planting parts, and the first planting part and the second planting parts are sequentially installed on the planting frame from top to bottom; the second planting part is provided with at least two planting cavities, and the planting cavities move in the radial direction and the axial direction in the mounting plane direction of the second planting part and are used for adjusting the position of the second planting part relative to the first planting part. According to the utility model, by adjusting the position of the second planting piece, the plants can utilize illumination resources more effectively, and better management is carried out.
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Description

Technical Field

[0001] This application relates to a greening and planting device, belonging to the field of planting technology. Background Technology

[0002] Green planting devices are a type of modern horticultural equipment. They are typically made of lightweight and durable materials, with a rational structural design for easy movement and installation. These devices effectively improve the survival rate and growth quality of green plants while reducing labor costs, making them suitable for various scenarios such as urban greening, home gardening, and rooftop greening. For example, utility model patent CN213548534U discloses a rooftop green planting system that solves the problems of large footprint and difficulty in maintaining planting trays by using multi-layer planting. However, when using multi-layer planting, the limited spacing between the upper and lower layers may lead to insufficient light intensity for the lower layer plants and difficulties in watering. Utility Model Content

[0003] According to one aspect of this application, a greening planting device is provided that enables plants to utilize light resources more effectively and to be better managed by adjusting the position of a second planting element.

[0004] A greening and planting device, characterized in that it comprises:

[0005] Planting racks;

[0006] The planting structure includes a first planting component and several second planting components, wherein the first planting component and the second planting components are installed sequentially from top to bottom on the planting frame;

[0007] The second implant has at least two implant cavities, which are capable of radial and axial movement in the mounting plane direction of the second implant for adjusting the position of the second implant relative to the first implant.

[0008] Furthermore, the planting frame includes a support base and a support rod, with the first planting component and the second planting component installed sequentially on the support rod from top to bottom.

[0009] Furthermore, the second implant is mounted on the support rod via a mounting part;

[0010] The mounting part includes a mounting sleeve and several movable parts disposed around the mounting sleeve. The implantation cavity is mounted on the movable parts, and the movable parts are used to make the implantation cavity move radially and axially.

[0011] Furthermore, the moving parts on adjacent second implants are staggered.

[0012] Furthermore, the moving part includes a radial sliding part and an axial telescopic part, the radial sliding part includes a slide rail, and the slide rail is provided with a plurality of slide grooves;

[0013] The implantation cavity is mounted on the axial telescopic part, and the axial sliding part is provided with a slider that matches the sliding groove. The slider slides in the sliding groove to make the implantation cavity slide radially.

[0014] Furthermore, the axial telescopic part includes a first mounting plate and a second mounting plate, the slider is disposed on the first mounting plate, the implantation cavity is mounted on the second mounting plate, and the second mounting plate moves toward or away from the first mounting plate.

[0015] Furthermore, the first mounting plate and the second mounting plate are connected by a scissor telescopic structure;

[0016] Both the first mounting plate and the second mounting plate have accommodating cavities on their opposite surfaces. When the scissor telescopic structure is not in the telescopic state, it is located within the two accommodating cavities.

[0017] Furthermore, the scissor telescopic structure includes a first member, a second member, a third member, and a fourth member; one end of the first member is hinged to the first mounting plate, and the other end is hinged to the second member; the end of the second member facing away from the first member is hinged to the second mounting plate; one end of the third member is hinged to the first mounting plate, and the other end is hinged to the fourth member; the end of the fourth member facing away from the third member is hinged to the second mounting plate.

[0018] Furthermore, the ends of the first rod and the third rod that are hinged to the first mounting plate are respectively located at both ends of the receiving cavity of the first mounting plate, and the ends of the second rod and the fourth rod that are hinged to the second mounting plate are respectively located at both ends of the receiving cavity of the second mounting plate.

[0019] The hinged end of the first rod and the hinged end of the third rod are located on the same side;

[0020] The hinged end of the second member and the hinged end of the fourth member are located on the same side.

[0021] The beneficial effects that this application can produce include:

[0022] This application provides a greening planting device. The planting structure includes a first planting component and several second planting components, which are sequentially installed on a planting frame from top to bottom. Each second planting component has at least two planting chambers, which can move radially and axially in the mounting plane of the second planting component to adjust its position relative to the first planting component. The planting frame is designed with different height levels, each capable of housing the second planting components. The grower can adjust the position of the second planting components as needed, moving them outwards away from the frame's axis to position them below and outside the first planting component, preventing the first component from obstructing the second. By adjusting the position of the planting components at different levels, light resources can be utilized more effectively, ensuring each layer of plants receives the necessary sunlight. This also allows for better management of the plants at different levels, such as watering. Simultaneously, the axial and radial movement allows the grower to freely adjust the positions for a more rational plant layout and aesthetic effect. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the overall structure of a greening planting device according to one embodiment of this application;

[0024] Figure 2 This is a schematic diagram of the installation structure of the planting cavity of a greening planting device according to one embodiment of this application;

[0025] Figure 3 This is a schematic diagram of an axial telescopic structure in one embodiment of this application;

[0026] List of components and reference numerals: 1-First implant; 2-Second implant; 3-Implant cavity; 4-Support base; 5-Support rod; 6-Mounting part; 7-Mounting sleeve; 8-Axial telescopic part; 9-Slide rail; 10-Slide groove; 11-Slider; 12-First mounting plate; 13-Second mounting plate; 14-Receiving cavity; 15-First rod; 16-Second rod; 17-Third rod; 18-Fourth rod. Detailed Implementation

[0027] The present application is described in detail below with reference to the embodiments, but the present application is not limited to these embodiments.

[0028] See Figure 1-3 A greening and planting device, characterized in that it comprises:

[0029] Planting racks;

[0030] The planting structure includes a first planting component 1 and several second planting components 2, wherein the first planting component 1 and the second planting components 2 are installed sequentially from top to bottom on the planting frame;

[0031] The second implant 2 has at least two implant cavities 3, which are radially and axially movable in the mounting plane direction of the second implant 2, for adjusting the position of the second implant 2 relative to the first implant 1.

[0032] Specifically, the planting rack is the basic structure of the entire device, used to support and fix the planting structure. It needs to be strong enough to bear the weight of the planting components and the plants inside, and to have good stability. The planting structure consists of a first planting component 1 and several second planting components 2. The first planting component 1 is located at the top of the planting structure. Different height levels are designed on the planting rack, and the second planting components can be installed at different levels. The second planting components 2 can plant different types of plants to increase the greening effect and biodiversity of the device. The second planting component 2 has at least two planting cavities 3, which can move radially and axially in the direction of the planting component mounting plane.

[0033] Furthermore, this mobility allows growers to adjust the position of the second planting element as needed. Moving the second planting element outwards from the axis of the planting frame, placing it below and outside the first planting element, prevents the first element from obstructing the second. By adjusting the position of the planting elements at different levels, light resources can be utilized more effectively, ensuring that each layer of plants receives the necessary sunlight. This also allows growers to better manage plants at different levels, such as watering. Simultaneously, the axial and radial movement allows growers to freely adjust the positions for a more rational plant layout and aesthetic effect.

[0034] The planting frame includes a support base 4 and a support rod 5 disposed on the support base, and the first planting component 1 and the second planting component 2 are installed on the support rod 5 from top to bottom.

[0035] Specifically, the support base is the foundation of the planting frame, responsible for firmly fixing the entire device to the ground. In practice, the base design should take into account the weight of the device, stability, and ground conditions. Weighted designs or the addition of anti-slip pads can enhance stability. The support rod is the vertical structure connecting the base and the planting components, responsible for supporting and securing the planting components. The material of the support rod should be strong enough to withstand the weight of the planting components and plants. The length and diameter of the support rod should be determined according to the size and weight of the planting components. The first and second planting components are installed on the support rod using some method (such as bolts, clips, hooks, etc.). The installation method should be simple and reliable, facilitating the disassembly and replacement of the planting components. A standardized installation interface can be considered to allow for interchangeable use of different planting component models.

[0036] In one embodiment of this application, the first implant and the second implant are disc-shaped, and the implant cavity is semi-circular or fan-shaped.

[0037] The second planting component 2 is mounted on the support rod 5 via the mounting part 6;

[0038] The mounting part 6 includes a mounting sleeve 7 and a plurality of movable parts disposed around the mounting sleeve 7. The implantation cavity 3 is mounted on the movable parts, and the movable parts are used to make the implantation cavity 3 move radially and axially.

[0039] Specifically, the mounting sleeve 7 is a key component connecting the planting element 2 and the support rod 5. The inner diameter of the mounting sleeve 7 should match the outer diameter of the support rod 5 to ensure a stable connection. Anti-slip structures (such as rubber pads, threads, etc.) can be considered inside the mounting sleeve 7 to prevent the planting element from sliding or rotating on the support rod. The moving part is a component located around the periphery of the mounting sleeve 7, used to achieve radial and axial movement of the planting cavity 3. The planting cavity 3 is the main component for planting plants and should be designed to be sufficiently robust to withstand the weight and growth pressure of the plants.

[0040] The moving parts on adjacent second planting components 2 are staggered.

[0041] Specifically, the staggered moving parts can more effectively utilize the space around the support rod 5. This allows the planting cavities 3 to move radially and axially without interfering with each other, thus enabling the planting of more plants within a limited space. The staggered moving parts can distribute the concentrated pressure of the planting components 2 on the support rod 5, helping to enhance the structural stability of the entire planting rack. It also reduces the risk of damage caused by collisions between planting components. Simultaneously, the staggered moving parts provide the planting cavities 3 with a greater range of motion and flexibility. Growers can more freely adjust the position and angle of the planting cavities 3 according to the growth needs of the plants and the desired aesthetic effect.

[0042] Furthermore, by utilizing space more effectively, growers can plant more plants on the same support rod, thereby improving planting efficiency. The staggered planting chambers 3 create a more layered and visually appealing effect, enhancing the overall aesthetics of the planting rack. By adjusting the position of the planting chambers 3, growers can better utilize natural light, providing a better growing environment for the plants.

[0043] It is important to note that when designing the staggered moving parts, they should be ensured to have sufficient structural strength to support the weight of the planting chamber 3 and the plants. At the same time, although the moving parts are designed to be staggered, the overall design of the planting rack should maintain consistency to ensure coordination and balance among the planting components.

[0044] The moving part includes a radial sliding part and an axial telescopic part 8. The radial sliding part includes a slide rail 9, and a plurality of slide grooves 10 are provided on the slide rail 9.

[0045] The implantation cavity 3 is mounted on the axial telescopic part 8. The axial sliding part 8 is provided with a slider 11 that matches the sliding groove 10. The slider 11 slides in the sliding groove 10 to make the implantation cavity 3 slide radially.

[0046] Specifically, the moving part consists of a radial sliding part and an axial telescopic part 8. The radial sliding part mainly includes a slide rail 9, on which multiple grooves 10 are provided. These grooves 10 are designed to match the sliders 11 to achieve radial movement. The axial telescopic part 8 is a part that can extend or move along the axial direction, and the implantation cavity 3 is mounted on this part. On the axial telescopic part 8, sliders 11 that match the grooves 10 are provided. When the sliders 11 slide within the grooves 10, they drive the implantation cavity 3 to slide radially. The axial telescopic part 8 includes a first mounting plate 12 and a second mounting plate 13. The sliders 11 are disposed on the first mounting plate 12, and the implantation cavity 3 is mounted on the second mounting plate 13. The second mounting plate 13 moves toward or away from the first mounting plate 12. Furthermore, the second mounting plate is located above the first mounting plate, and the second mounting plate moves up and down relative to the first mounting plate.

[0047] The first mounting plate 12 and the second mounting plate 13 are connected by a scissor telescopic structure.

[0048] The first mounting plate 12 and the second mounting plate 13 are each provided with a receiving cavity 14 on their opposite surfaces. When the scissor telescopic structure is not in the telescopic state, it is located in the two receiving cavities 14.

[0049] Specifically, the first mounting plate 12 and the second mounting plate 13 are connected by a scissor-type telescopic structure. This scissor-type telescopic structure allows the two mounting plates to extend and retract within a certain range while maintaining a stable relative position.

[0050] Furthermore, receiving cavities 14 are provided on the opposing surfaces of the first mounting plate 12 and the second mounting plate. These receiving cavities 14 are designed to provide space to accommodate the scissor telescopic structure when it is not in a telescopic state, thus maintaining overall compactness and neatness. In other words, when the scissor telescopic structure is in a non-operating state (i.e., not telescopic), it is completely or partially contained within these two receiving cavities 14, without protruding or interfering with external structures or functions. This design not only helps protect the scissor telescopic structure from damage by the external environment but also ensures the overall neatness and aesthetics of the device. Simultaneously, because the scissor telescopic structure can quickly telescopic when needed, this connection method also provides great flexibility and practicality.

[0051] The scissor telescopic structure includes a first member 15, a second member 16, a third member 17, and a fourth member 18; one end of the first member 15 is hinged to the first mounting plate 12, and the other end is hinged to the second member 16; the end of the second member 16 facing away from the first member 15 is hinged to the second mounting plate 13; one end of the third member 17 is hinged to the first mounting plate 12, and the other end is hinged to the fourth member 18; the end of the fourth member 18 facing away from the third member 17 is hinged to the second mounting plate 13.

[0052] The ends of the first rod 15 and the third rod 17 that are hinged to the first mounting plate 12 are respectively located at both ends of the receiving cavity of the first mounting plate 12, and the ends of the second rod 16 and the fourth rod 18 that are hinged to the second mounting plate 13 are respectively located at both ends of the receiving cavity of the second mounting plate 13.

[0053] The hinged end of the first rod 15 and the hinged end of the second rod 16 are located on the same side;

[0054] The hinge end of the third member 17 and the hinge end of the fourth member 18 are located on the same side.

[0055] Specifically, the scissor-type telescopic structure consists of four members—the first member 15, the second member 16, the third member 17, and the fourth member 18—connected by hinges between the first mounting plate 12 and the second mounting plate 13. The scissor-type telescopic structure maintains overall stability and balance during telescoping. The term "same side" refers to the corresponding end of the first and second mounting plates, such as... Figure 3 As shown.

[0056] It is worth noting that the hinge strength should meet the support requirements of the implantation cavity to ensure the stability of the entire device. At the same time, fixing components can be set to further improve the stability of the first rod 15, the second rod 16, the third rod 17 and the fourth rod 18. This is not limited here and can be implemented in existing production.

[0057] The above description is merely a few embodiments of this application and is not intended to limit this application in any way. Although this application discloses preferred embodiments as described above, it is not intended to limit this application. Any changes or modifications made by those skilled in the art without departing from the scope of the technical solution of this application using the disclosed technical content are equivalent to equivalent implementation cases and fall within the scope of the technical solution.

Claims

1. A greening and planting device, characterized in that, include: Planting racks; The planting structure includes a first planting component (1) and several second planting components (2), wherein the first planting component (1) and the second planting components (2) are installed on the planting frame from top to bottom; The second implant (2) has at least two implant cavities (3), which are radially and axially movable in the mounting plane direction of the second implant (2) to adjust the position of the second implant (2) relative to the first implant (1); The planting frame includes a support base (4) and a support rod (5), and the first planting component (1) and the second planting component (2) are installed on the support rod (5) from top to bottom; The second planting component (2) is mounted on the support rod (5) via the mounting part (6); The mounting part (6) includes a mounting sleeve (7) and a plurality of movable parts disposed around the mounting sleeve (7). The implantation cavity (3) is mounted on the movable parts, and the movable parts are used to make the implantation cavity (3) move radially and axially. The moving part includes a radial sliding part and an axial telescopic part (8). The radial sliding part includes a slide rail (9) and a plurality of slide grooves (10) are provided on the slide rail (9). The implantation cavity (3) is mounted on the axial telescopic part (8), and the axial telescopic part (8) is provided with a slider (11) that matches the slide groove (10). The slider (11) slides in the slide groove (10) to make the implantation cavity (3) slide radially.

2. The greening and planting device according to claim 1, characterized in that, The moving parts on adjacent second planting parts (2) are staggered.

3. The greening and planting device according to claim 1, characterized in that, The axial telescopic part (8) includes a first mounting plate (12) and a second mounting plate (13). The slider (11) is disposed on the first mounting plate (12), and the implantation cavity (3) is mounted on the second mounting plate (13). The second mounting plate (13) moves toward or away from the first mounting plate (12).

4. A greening and planting device according to claim 3, characterized in that, The first mounting plate (12) and the second mounting plate (13) are connected by a scissor telescopic structure; The first mounting plate (12) and the second mounting plate (13) are provided with accommodating cavities (14) on their opposite sides. When the scissor telescopic structure is not in the telescopic state, it is located in the two accommodating cavities (14).

5. A greening and planting device according to claim 4, characterized in that, The scissor telescopic structure includes a first member (15), a second member (16), a third member (17), and a fourth member (18); one end of the first member (15) is hinged to the first mounting plate (12), and the other end is hinged to the second member (16); the end of the second member (16) facing away from the first member (15) is hinged to the second mounting plate (13); one end of the third member (17) is hinged to the first mounting plate (12), and the other end is hinged to the fourth member (18); the end of the fourth member (18) facing away from the third member (17) is hinged to the second mounting plate (13).

6. A greening and planting device according to claim 5, characterized in that, The ends of the first rod (15) and the third rod (17) that are hinged to the first mounting plate (12) are respectively located at both ends of the receiving cavity of the first mounting plate (12), and the ends of the second rod (16) and the fourth rod (18) that are hinged to the second mounting plate (13) are respectively located at both ends of the receiving cavity of the second mounting plate (13). The hinge end of the first rod (15) and the hinge end of the third rod (17) are located on the same side; The hinge end of the second member (16) is on the same side as the hinge end of the fourth member (18).

Citation Information

Patent Citations

  • Roof greening planting system

    CN213548534U