Prefabricated landscape plant wall

By using prefabricated design and modular connectors, the installation process of the plant wall is simplified, solving the problems of cumbersome installation and safety hazards in existing technologies. This achieves efficient installation and transportation, and improves the practicality and aesthetics of the plant wall.

CN116636405BActive Publication Date: 2026-04-24SHANGHAI WEILV LANDSCAPE CONSTR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHANGHAI WEILV LANDSCAPE CONSTR CO LTD
Filing Date
2023-06-26
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

The installation process of existing plant walls is cumbersome, especially at heights where ladders are needed, which increases the safety risks for workers and makes transportation inconvenient.

Method used

The prefabricated design uses a combination of connecting rods, pulleys, a first connector, and a second connector to first install the cultivation bucket in the placement slot, and then install the connecting rod through the first connector, simplifying the installation process. Combined with the design of the adjustment components and the arc groove, the angle of the frame can be adjusted and the stability of the cultivation bucket can be achieved.

Benefits of technology

It simplifies the installation process of plant walls, reduces the time and safety hazards for workers, improves transportation efficiency, and enhances the practicality and versatility of plant walls by adjusting the settings of components and arc grooves.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of greening devices, in particular to an assembled landscape plant wall which comprises a frame and cultivation buckets, a plurality of placing grooves are formed in the frame, a plurality of connecting rods are arranged at one end of the frame away from the placing grooves, the connecting rods are grouped in pairs, the connecting rods in each group are arranged along the length direction of the frame, the two connecting rods in each group are oppositely arranged along the width direction, a reinforcing rib is arranged between the two connecting rods in each group, pulleys are arranged on the end faces of the connecting rods away from the frame, mounting grooves for sliding insertion of the connecting rods are formed in the wall body, the connecting rods are detachably connected with the groove walls of the mounting grooves through first connecting pieces, the cultivation buckets are located in the placing grooves, and the cultivation buckets are detachably connected with the groove walls of the placing grooves through second connecting pieces. The application has the effect of simplifying the installation process of the plant wall, thereby facilitating the installation work of the staff.
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Description

Technical Field

[0001] This application relates to the technical field of greening devices, and in particular to a prefabricated landscape plant wall. Background Technology

[0002] A living wall is a landscape design element that involves planting plants on a vertical surface. Living walls can be used indoors or outdoors, and can be a standalone design element or part of an overall landscape design. Due to their effects on beautifying the environment, improving air quality, reducing indoor temperatures, absorbing noise, and mitigating the urban heat island effect, they are widely used on various building structures.

[0003] In the existing technology, plant walls generally include a frame and cultivation containers. The frame has slots for placing the cultivation containers. In actual installation, workers usually transport the frame and cultivation containers to the designated location, then install the frame on the wall, and finally place the cultivation containers one by one into the slots on the frame.

[0004] The entire process described above is relatively complicated. After installation, staff need to place the cultivation containers one by one. Moreover, when the plant wall is high, staff need to use ladders and other tools to place the cultivation containers on the frame and into the slots, which further increases the complexity of the work. Summary of the Invention

[0005] To simplify the installation process of plant walls and facilitate the installation work of staff, this application provides a prefabricated landscape plant wall.

[0006] This application provides a prefabricated landscape plant wall using the following technical solution:

[0007] A prefabricated landscape plant wall includes:

[0008] The frame has multiple placement slots, and multiple connecting rods are provided on the end of the frame away from the placement slots. The multiple connecting rods are grouped in pairs, and the connecting rods in each group are arranged along the length of the frame. The two connecting rods in each group are arranged opposite each other along the width direction, and a reinforcing rib is provided between the two connecting rods in each group. Each of the multiple connecting rods has a pulley on the end face away from the frame. The wall has an installation slot for the connecting rods to slide into. The connecting rods are detachably connected to the wall of the installation slot through a first connector.

[0009] A cultivation bucket is located inside the placement trough, and the cultivation bucket is detachably connected to the wall of the placement trough via a second connector.

[0010] By adopting the above technical solution, workers can first install all the cultivation containers into the placement slot using the second connector, and then install the connecting rod into the installation slot using the first connector. This eliminates the need for workers to place the cultivation containers into the placement slot one by one after installing the frame, thus saving installation time. Moreover, since the cultivation containers are placed into the placement slot in advance, workers can first lay the frame flat. After all the cultivation containers are in place, workers can then stand the frame up and install it, eliminating the need to use ladders to place the cultivation containers. This not only simplifies the overall installation steps of the plant wall but also reduces safety hazards for workers. In addition, the pulley system facilitates the transportation of the plant wall, ultimately simplifying the overall installation process and making installation easier for workers.

[0011] Optionally, the first connecting member includes a rotating tube and a limiting block. The rotating tube is sleeved on the connecting rod, and a torsion spring device is provided between the rotating tube and the connecting rod. The limiting block is fixedly connected to the side wall of the rotating tube. A through groove is provided on the wall for the limiting block to slide into. The through groove communicates with the mounting groove. A limiting groove is provided in the wall. The limiting groove communicates with the through groove, and the layout direction of the limiting groove is perpendicular to the layout direction of the through groove.

[0012] By adopting the above technical solution, when the frame needs to be installed on the wall, the rotating tube is rotated so that the limiting block on the rotating tube is aligned with the through groove. Then the connecting rod is inserted into the installation groove, and at the same time, the limiting block is inserted into the through groove. When the limiting block slides into the limiting groove, due to the setting of the torsion spring device, the rotating tube rotates and drives the limiting block to slide into the limiting groove, thereby realizing the connection function of the first connecting piece to the connecting rod and the wall.

[0013] Optionally, an adjustment component is provided between the connecting rod and the frame, the adjustment component being used to adjust the angle of the frame in the horizontal direction.

[0014] By adopting the above technical solution, the cultivation buckets at different positions on the frame can receive different levels of light, so different varieties of plants can be planted on the frame according to the light conditions, thereby improving the practicality of the device. It is also possible to plant the same variety of plants, and then adjust the components accordingly.

[0015] Optionally, multiple adjustment components are provided, each corresponding to a connecting rod located on one side of the frame in the width direction. Each adjustment component includes a telescopic device and a slider. The telescopic device is installed on the connecting rod at the end away from the pulley. The frame has a groove adapted to the slider, and the groove is arranged perpendicular to the movement direction of the pulley. The output end of the telescopic device is hinged to the slider, and the hinge direction is perpendicular to the movement direction of the pulley. The connecting rod without an adjustment component is hinged to the frame, and the hinge direction is perpendicular to the movement direction of the pulley. The telescopic device is used to drive the slider to slide within the groove.

[0016] By adopting the above technical solution, when the angle of the frame needs to be adjusted, the telescopic device is activated, thereby driving the slider to slide in the slide groove, thereby driving the frame to rotate around the hinge between the connecting rod and the frame, thus realizing the overall adjustment component's angle adjustment function of the frame in the horizontal direction.

[0017] Optionally, the telescopic device is a cylinder.

[0018] By adopting the above technical solution, when it is necessary to drive the slider to slide in the groove, the cylinder is activated. When the output shaft of the cylinder extends, the slider moves away from the adjacent connecting rod, thereby driving the frame to rotate clockwise. When the output shaft of the cylinder shortens, the slider moves closer to the adjacent connecting rod, thereby driving the frame to rotate counterclockwise. Thus, the telescopic device drives the slider as a whole.

[0019] Optionally, the frame is provided with an arc groove that communicates with the placement groove. The upper end of the cultivation bucket (2) can be hinged to the groove wall of the placement groove through the second connector, and the lower end of the cultivation bucket slides against the groove wall of the arc groove. When the frame is in a horizontal state, the cultivation bucket is rotated to a vertical state through the second connector. When the frame is in a vertical state, the cultivation bucket is rotated to an inclined state through the second connector.

[0020] By adopting the above technical solution, when transporting the plant wall, the frame is laid flat, and the cultivation bucket can be placed relatively stably in the placement groove, thereby avoiding soil loss due to vibration during transportation; when installing the plant wall, the plant wall is in an upright position, and the cultivation bucket is rotated into the arc groove along the hinge joint with the installation groove. At this time, the cultivation bucket is in an inclined position, thereby minimizing the risk of plants and soil falling out of the cultivation bucket, thus improving the overall practicality of the cultivation bucket.

[0021] Optionally, a stop block is provided at the opening of the arc groove, and the stop block abuts against the side wall of the cultivation bucket.

[0022] By adopting the above technical solution, the phenomenon of cultivation buckets sliding out of the arc groove is prevented as much as possible, thereby improving the stability of cultivation buckets and reducing the safety hazards of this device.

[0023] Optionally, an elastic block is provided on the groove wall away from the arc groove in the placement groove.

[0024] By adopting the above technical solution, when the frame changes from an upright state to a flat state, the cultivation bucket slides back from the arc groove to the placement groove, and the elastic block can...

[0025] The buckets are tilted at different angles, allowing the plants in multiple cultivation buckets to be arranged in a certain cross pattern in the space, forming different overall patterns, in order to enhance the diversity and practicality of the plant wall.

[0026] Optionally, the second connector includes an elastic sheet and a connecting block. Two elastic sheets are provided, and the two elastic sheets are arranged opposite each other on the upper end of the cultivation container. Each of the two elastic sheets has a protrusion on its opposite end face. Two connecting blocks are provided, and the two connecting blocks are arranged opposite each other on the wall of the placement groove. Each of the two connecting blocks has a through hole that matches the protrusion. The two protrusions correspond one-to-one with the two through holes. The farthest distance between the two elastic sheets is greater than the closest distance between the two connecting blocks.

[0027] By adopting the above technical solution, when the cultivation bucket needs to be installed in the placement trough, the two elastic pieces are pressed together in a direction that brings them closer to each other, so that the protrusions on the elastic pieces are aligned with the through holes. Then the elastic pieces are reset and the protrusions are inserted into the through holes. When the cultivation bucket does not need to be removed from the placement trough, the two elastic pieces are simply pressed together in a direction that brings them closer to each other. Thus, the second connector is used to hinge the cultivation bucket to the wall of the placement trough and make it detachable.

[0028] In summary, this application includes at least one of the following beneficial technical effects:

[0029] 1. By using connecting rods, pulleys, a first connector, and a second connector, workers can first install all the cultivation containers into the placement slot using the second connector, and then install the connecting rods into the installation slot using the first connector. This eliminates the need for workers to place the cultivation containers one by one into the placement slot after the frame is installed, thus saving installation time. Furthermore, since the cultivation containers are placed into the placement slot in advance, workers can first lay the frame flat. After all the cultivation containers are in place, workers can then stand the frame upright and install it, eliminating the need for ladders to place the cultivation containers. This not only simplifies the overall installation process of the plant wall but also reduces safety hazards for workers. Additionally, the pulleys facilitate the transportation of the plant wall, ultimately simplifying the overall installation process and making installation easier for workers.

[0030] 2. By adjusting the settings of the components, the plant wall allows cultivation containers at different positions on the frame to receive different levels of light, thus enabling the planting of different varieties of plants on the frame according to the light conditions, thereby improving the practicality of the device.

[0031] 3. The arc groove and the second connector not only allow the cultivation bucket to be relatively stable in the placement groove when the frame is in different states, but also allow the tilt angle of the cultivation bucket to be adjusted by setting an elastic strip in the arc groove. This, together with the adjustment component to adjust the angle of the frame, allows multiple cultivation buckets to be arranged in different combinations on the frame, thereby improving the creative possibilities of the entire plant wall. Attached Figure Description

[0032] Figure 1 This is a schematic diagram of the overall structure of the plant wall in the embodiments of this application.

[0033] Figure 2 This is a schematic diagram of the framework in the embodiments of this application.

[0034] Figure 3 yes Figure 2 Enlarged diagram of point A in the middle.

[0035] Figure 4 yes Figure 2 Enlarged diagram of point B in the middle.

[0036] Figure 5 This is a schematic diagram of the structure of the first connector in the embodiments of this application.

[0037] Figure 6 This is a schematic diagram of the mounting slot in an embodiment of this application.

[0038] Figure 7 This is a schematic diagram of the limiting groove in an embodiment of this application.

[0039] Figure 8 yes Figure 7 Enlarged diagram of point C in the middle.

[0040] Explanation of reference numerals in the attached figures:

[0041] 1. Frame; 11. Placement slot; 12. Connecting rod; 13. Reinforcing rib; 14. Pulley; 15. Slide groove; 16. Arc groove; 17. Stop block; 18. Elastic block; 19. Elastic strip; 2. Cultivation bucket; 3. First connecting piece; 31. Rotating tube; 32. Limiting block; 33. Torsion spring device; 34. Rotating handle; 4. Second connecting piece; 41. Elastic sheet; 411. Protrusion; 42. Connecting block; 421. Through hole; 5. Adjustment component; 51. Telescopic device; 52. Slider; 6. Wall; 61. Mounting slot; 62. Through groove; 63. Limiting slot. Detailed Implementation

[0042] The following is in conjunction with the appendix Figure 1-8 This application will be described in further detail.

[0043] This application discloses a prefabricated landscape plant wall. (Refer to...) Figure 1 A prefabricated landscape plant wall includes a frame 1, a cultivation bucket 2, a first connector 3, a second connector 4, and an adjustment component 5.

[0044] In this embodiment, the frame 1 is generally a rectangular wall. In other alternative embodiments, the frame 1 can also be constructed from multiple square tubes. Moreover, depending on the actual needs, the frame 1 can be made of steel, aluminum alloy, or plastic.

[0045] Reference Figure 2 The frame 1 has multiple placement slots 11 for placing cultivation buckets 2. In this embodiment, there are nine placement slots 11. All nine placement slots 11 are located on the end of the frame 1 away from the wall 6, and the nine placement slots 11 are arranged in a three-by-three array. Of course, in other optional embodiments, the number of placement slots 11 can be determined according to the actual situation, and the entire arrangement of the multiple placement slots 11 can also be determined according to the actual situation.

[0046] Reference Figure 3The frame 1 is also provided with arc grooves 16. In this embodiment, there are nine arc grooves 16, which correspond one-to-one with nine placement slots 11. The arc grooves 16 are located below and communicate with the placement slots 11. Of course, in this embodiment, the arc grooves 16 can be extensions of the placement slots 11. It should be noted that the placement slots 11 in this embodiment are rectangular because the cultivation bucket 2 can slide within the placement slots 11 and the arc grooves 16. Therefore, it is most convenient for the placement slots 11 to be rectangular in this embodiment. The cross-sectional shape of the cultivation bucket 2 can be circular or rectangular, etc. Of course, in other optional embodiments, if the arc grooves 16 are not required, the shape of the placement slots 11 can be circular, etc.

[0047] Reference Figure 4 The second connector 4 includes an elastic sheet 41 and a connecting block 42.

[0048] Two elastic sheets 41 are provided, and the two elastic sheets 41 are arranged opposite each other at the upper end of the cultivation container 2. Each of the two elastic sheets 41 has a protrusion 411 on its opposite end face. Two connecting blocks 42 are provided, and the two connecting blocks 42 are arranged opposite each other at the opening of the placement groove 11. Each of the two connecting blocks 42 has a through hole 421 that matches the protrusion 411. The two protrusions 411 and the two through holes 421 correspond one-to-one. The farthest distance between the two elastic sheets 41 is greater than the closest distance between the two connecting blocks 42. In this embodiment, the distance is preferably equal.

[0049] When the cultivation bucket 2 needs to be installed in the placement slot 11, the two elastic pieces 41 are pressed together in a direction that brings them closer to each other, so that the protrusion 411 on the elastic piece 41 is aligned with the through hole 421. Then the elastic piece 41 is reset and the protrusion 411 is inserted into the through hole 421. Therefore, the second connector 4 not only allows the cultivation bucket 2 and the frame 1 to be in a hinged state, but also facilitates the installation and disassembly of the cultivation bucket 2. Thus, users can also rearrange the position of the cultivation bucket 2 according to their own preferences to improve the user experience.

[0050] Of course, in other alternative embodiments, the second connector 4 may also be a pin or other device that enables the cultivation bucket 2 to be hinged to the wall of the placement trough 11.

[0051] When the frame 1 is in a horizontal state, the cultivation bucket 2 is placed in the placement groove 11, and the cultivation bucket 2 and the placement groove 11 are coaxially arranged. At this time, the cultivation bucket 2 is in an upright state, and during transportation, the cultivation bucket 2 is not easy to slide out of the placement groove 11. When the frame 1 is in an upright state, the cultivation bucket 2 can rotate along the hinge point between it and the placement groove 11 into the arc groove 16. At this time, the cultivation bucket 2 is in an inclined state to prevent the soil and plants inside the cultivation bucket 2 from falling out of the cultivation bucket 2 as much as possible.

[0052] Reference Figure 3 A stop 17 is provided at the opening of the arc groove 16. When the cultivation bucket 2 slides to the opening of the arc groove 16, the bucket wall of the cultivation bucket 2 abuts against the stop 17, thereby preventing the cultivation bucket 2 from sliding out of the arc groove 16 as much as possible, thus reducing the safety hazards of this device.

[0053] To reduce the probability of damage to the cultivation bucket 2, an elastic block 18 is provided on the wall of the placement trough 11 away from the arc groove 16. When the frame 1 changes from an upright state to a flat state, the cultivation bucket 2 slides back from the arc groove 16 into the placement trough 11, and the elastic block 18 can provide a certain buffering effect for the cultivation bucket 2. At the same time, a layer of elastic material can also be covered on the end face of the stop block 17 that abuts against the cultivation bucket 2.

[0054] Several elastic strips 19 are provided on the wall of the arc groove 16. In this embodiment, four elastic strips 19 are provided. Of course, in other optional embodiments, the number of elastic strips 19 can be determined according to the actual situation. The four elastic strips 19 are evenly spaced along the layout direction of the arc groove 16, which allows the cultivation buckets 2 to be at different tilt angles, so that the plants in multiple cultivation buckets 2 can be arranged in a certain cross-shaped pattern in space to form different overall patterns, thereby enhancing the diversity and practicality of the plant wall.

[0055] Reference Figure 5 and Figure 6 Multiple connecting rods 12 are provided on the end of the frame 1 away from the placement slot 11. The multiple connecting rods 12 are grouped in pairs, with each group of connecting rods 12 arranged vertically and the two connecting rods 12 in each group arranged horizontally opposite each other. A reinforcing rib 13 is provided between the two connecting rods 12 in each group. In this embodiment, six connecting rods 12 are provided. Each of the six connecting rods 12 has a pulley 14 on its end face away from the frame 1. The wall 6 has an installation slot 61 for the connecting rods 12 to slide into (in conjunction with...). Figure 1 Furthermore, in this embodiment, the cross-section of the connecting rod 12 is set to be circular. Of course, in other optional embodiments, the cross-section of the connecting rod 12 can be square or other shapes.

[0056] Similarly, there are six mounting slots 61, and the positions of the six mounting slots 61 correspond to the positions of the six connecting rods 12. All six mounting slots 61 are arranged in a horizontal direction.

[0057] In this embodiment, six first connectors 3 are also provided. The first connectors 3 include a rotating tube 31 and a limiting block 32.

[0058] Reference Figure 7 and Figure 8The rotating tube 31 is coaxially sleeved on the connecting rod 12, and a torsion spring device 33 is provided between the rotating tube 31 and the connecting rod 12. In this embodiment, the torsion spring device 33 is a torsion spring. In other optional embodiments, it can also be an actuating torsion spring or other device. In addition, in this embodiment, the number of limiting blocks 32 is set to two. The two limiting blocks 32 are arranged opposite to each other, and both limiting blocks 32 are fixedly connected to the outer wall of the rotating tube 31. Of course, in other optional embodiments, the number of limiting blocks 32 can be determined according to the actual situation. The wall 6 is provided with a through groove 62 for the limiting blocks 32 to slide into. Correspondingly, there are also two through grooves 62. The two through grooves 62 are arranged in the same direction as the mounting groove 61 and are interconnected. The wall 6 is provided with a limiting groove 63. Similarly, there are also two limiting grooves 63. The two limiting grooves 63 correspond one-to-one with the two through grooves 62 and are interconnected. The arrangement direction of the limiting groove 63 is perpendicular to the arrangement direction of the through groove 62.

[0059] When installing a plant wall, the staff can first install all the cultivation buckets 2 into the placement groove 11 through the second connector 4, then rotate the rotating tube 31 so that the limiting block 32 on the rotating tube 31 is aligned with the through groove 62, and then insert the connecting rod 12 into the installation groove 61. At the same time, the limiting block 32 is inserted into the through groove 62. When the limiting block 32 slides to the limiting groove 63, due to the setting of the torsion spring device 33, the rotating tube 31 rotates and drives the limiting block 32 to slide into the limiting groove 63. Thus, the staff does not need to put the cultivation buckets 2 into the placement groove 11 one by one after installing the frame 1, thereby saving the staff's installation time.

[0060] Moreover, since the cultivation buckets 2 are placed into the placement slots 11 in advance, the staff can first lay the frame 1 flat. After all the cultivation buckets 2 are placed, the staff can then stand the frame 1 up and install it. This eliminates the need to use ladders to place the cultivation buckets 2, which not only simplifies the overall installation steps of the plant wall but also reduces safety hazards for the staff. Even if the position of the rotating tube 31 on the connecting rod 12 is too high, the staff only needs to place ladders on both sides of the frame 1 and then rotate the rotating tube 31. There is no need to move the ladders one by one to place the cultivation buckets 2 into the placement slots 11.

[0061] In addition, the installation of pulley 14 facilitates the transportation of the plant wall, ultimately simplifying the overall installation process and making it easier for staff to install the plant wall.

[0062] To further facilitate the installation work of the staff, a rotating handle 34 is also coaxially fixedly sleeved on the rotating tube 31. In this embodiment, the rotating handle 34 is set to be circular. In other optional embodiments, the shape of the rotating handle 34 can be determined according to the actual situation. In addition, anti-slip strips are provided on the peripheral wall of the rotating handle 34 to facilitate the staff to rotate it.

[0063] Reference Figure 5 Multiple adjustment components 5 are provided. In this embodiment, three adjustment components 5 are provided, and the three adjustment components 5 correspond one-to-one with the three connecting rods 12 located on one side of the frame 1 in the vertical direction. The adjustment component 5 includes a telescopic device 51 and a slider 52.

[0064] In this embodiment, the telescopic device 51 is a cylinder. In other optional embodiments, the telescopic device 51 can be an electric cylinder, a lead screw and nut assembly, etc. The cylinder is installed on the end of the connecting rod 12 away from the pulley 14. The frame 1 is provided with a groove 15 that is adapted to the slider 52. The layout direction of the groove 15 is perpendicular to the moving direction of the pulley 14. The output end of the cylinder is hinged to the slider 52, and the hinge direction is perpendicular to the moving direction of the pulley 14. The connecting rod 12 without the adjustment assembly 5 is hinged to the frame 1, and the hinge direction is perpendicular to the moving direction of the pulley 14.

[0065] It should be noted that the reason why the hinge direction of the connecting rod 12 and the frame 1 and the moving direction of the pulley 14 are perpendicular in this embodiment is because when the moving direction of the pulley 14 is the same as the hinge direction of the connecting rod 12 and the frame 1, the connecting rod 12 is equivalent to the rocker arm in the crank-rocker mechanism, and it cannot support the frame 1. When the frame 1 is in a flat and transported state, the entire device will collapse directly. Therefore, when the hinge directions of the two ends of the connecting rod 12 are not in the same direction, the frame 1 can be in a stable state. Therefore, in other optional embodiments, the hinge direction of the connecting rod 12 and the frame 1 and the moving direction of the pulley 14 can also have a certain angle. However, when they are perpendicular, the frame 1 can achieve the highest stability.

[0066] Since different plants require different light intensities, and different types of plants are usually grown on a plant wall, the cylinder can be activated to extend or retract its output shaft, causing it to slide within the groove 15. This, in turn, causes the frame 1 to rotate around the hinge point between the connecting rod 12 and the frame 1. By adjusting the angle of the frame 1 in the horizontal direction, some plants on the plant wall can be positioned to face the sunlight, while others can be kept away from direct sunlight. The cultivation containers 2 at different positions on the frame 1 can receive varying degrees of light, thus improving the practicality of the device. Of course, the same variety of plants can also be planted, and the frame 1 can be adjusted frequently using the adjustment component 5 to ensure that the plants on the plant wall receive light relatively evenly.

[0067] At the same time, by adjusting the angle of the plants in the horizontal direction through the adjusting component 5 and by adjusting the angle of the plants in the vertical direction through the second connector 4, the combined adjustment of the two allows for more combinations in the spatial arrangement of the plant cultivation buckets 2. Therefore, the plants in the cultivation buckets 2 can form different patterns together, thereby improving the diversity and practicality of the entire plant wall.

[0068] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A prefabricated landscape plant wall, characterized in that, include: A frame (1) is provided with multiple placement slots (11). Multiple connecting rods (12) are provided on one end of the frame (1) away from the placement slots (11). The multiple connecting rods (12) are grouped in pairs. Each group of connecting rods (12) is arranged along the length direction of the frame (1). The two connecting rods (12) in each group are arranged opposite each other along the width direction. A reinforcing rib (13) is provided between the two connecting rods (12) in each group. A pulley (14) is provided on the end face of the multiple connecting rods (12) away from the frame (1). An installation slot (61) is provided on the wall (6) for the connecting rods (12) to slide into. The connecting rods (12) are detachably connected to the wall of the installation slot (61) through the first connector (3). Cultivation bucket (2), the cultivation bucket (2) is located in the placement trough (11), and the cultivation bucket (2) is detachably connected to the trough wall of the placement trough (11) through the second connector (4); The frame (1) is provided with an arc groove (16) that communicates with the placement groove (11). The upper end of the cultivation bucket (2) can be hinged to the groove wall of the placement groove (11) through the second connector (4), and the lower end of the cultivation bucket (2) slides against the groove wall of the arc groove (16). When the frame (1) is in a horizontal state, the cultivation bucket (2) is turned to a vertical state through the second connector (4). When the frame (1) is in a vertical state, the cultivation bucket (2) is turned to a tilted state through the second connector (4).

2. The prefabricated landscape plant wall according to claim 1, characterized in that: The first connector (3) includes a rotating tube (31) and a limiting block (32). The rotating tube (31) is sleeved on the connecting rod (12), and a torsion spring device (33) is provided between the rotating tube (31) and the connecting rod (12). The limiting block (32) is fixedly connected to the side wall of the rotating tube (31). A through groove (62) is provided on the wall (6) for the limiting block (32) to slide into. The through groove (62) is connected to the mounting groove (61). A limiting groove (63) is provided in the wall (6). The limiting groove (63) is connected to the through groove (62), and the arrangement direction of the limiting groove (63) is perpendicular to the arrangement direction of the through groove (62).

3. The prefabricated landscape plant wall according to claim 1, characterized in that: An adjustment component (5) is provided between the connecting rod (12) and the frame (1), the adjustment component (5) being used to adjust the angle of the frame (1) in the horizontal direction.

4. A prefabricated landscape plant wall according to claim 3, characterized in that: Multiple adjustment components (5) are provided, and each adjustment component (5) corresponds to a connecting rod (12) located on one side of the frame (1) in the width direction. Each adjustment component (5) includes a telescopic device (51) and a slider (52). The telescopic device (51) is installed on the connecting rod (12) at the end away from the pulley (14). The frame (1) is provided with a groove (15) adapted to the slider (52). The layout direction of the groove (15) is perpendicular to the moving direction of the pulley (14). The output end of the telescopic device (51) is hinged to the slider (52), and the hinge direction is perpendicular to the moving direction of the pulley (14). The connecting rod (12) without adjustment components (5) is hinged to the frame (1), and the hinge direction is perpendicular to the moving direction of the pulley (14). The telescopic device (51) is used to drive the slider (52) to slide in the groove (15).

5. A prefabricated landscape plant wall according to claim 4, characterized in that: The telescopic device (51) is a cylinder.

6. A prefabricated landscape plant wall according to claim 1, characterized in that: A stop (17) is provided at the opening of the arc groove (16), and the stop (17) abuts against the side wall of the cultivation bucket (2).

7. A prefabricated landscape plant wall according to claim 1, characterized in that: An elastic block (18) is provided on the groove wall of the placement groove (11) away from the arc groove (16).

8. A prefabricated landscape plant wall according to claim 1, characterized in that: The arc groove (16) has several elastic strips (19) on its groove wall.

9. A prefabricated landscape plant wall according to claim 1, characterized in that: The second connector (4) includes an elastic sheet (41) and a connecting block (42). There are two elastic sheets (41), which are arranged opposite each other on the upper end of the cultivation bucket (2). There are protrusions (411) on the opposite end faces of the two elastic sheets (41). There are two connecting blocks (42), which are arranged opposite each other on the wall of the placement groove (11). There are through holes (421) on the two connecting blocks (42) that are adapted to the protrusions (411). The two protrusions (411) and the two through holes (421) correspond one-to-one. The farthest distance between the two elastic sheets (41) is greater than the closest distance between the two connecting blocks (42).

Citation Information

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