A prefabricated plant modeling tool for inverted growth

CN224760805UActive Publication Date: 2026-09-18江苏常久生态科技有限公司
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Patent Information

Application Number
CN202522298403.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-30
Publication Date
2026-09-18
Estimated Expiration
2035-10-30

AI Technical Summary

Technical Problem

[0003]传统倒垂植物造型工具普遍采用焊接式或拼装式结构,整体高度和安装位置不可调节,导致其在不同空间环境中的适应性较差,由于缺乏高度调节功能,无法根据植物生长阶段或现场空间布局进行灵活调整,影响植物的生长效果和视觉美感

Benefits of technology

[0013]Compared with existing technologies, the advantages of this utility model are as follows: The support mechanism, as a basic fixed structure, is independently fixed to the ground, wall, or auxiliary frame, providing a stable installation foundation for the entire tool and adapting to various installation scenarios. The connecting mechanisms at both ends of the support beam are connected to the support mechanism, and together with the drive mechanism, the working height of the support beam can be precisely adjusted. The planting height can be flexibly adjusted according to the plant growth needs or spatial layout. The mounting seat slides along the support beam and is locked in position by screws, and can be fixed at any position on the support beam. Combined with the setting of at least one mounting seat, it meets the installation needs of different numbers and spacings of plant pots. The positioning component is connected to the support frame by bolts and threads, ensuring that the support frame is stably installed while facilitating disassembly and position adjustment, so that the plant pots can be precisely positioned according to the shaping requirements. Through the height-adjustable and position-sliding locking structural design, this tool significantly improves the adaptability to different spatial environments and plant types compared with traditional fixed shaping tools. It allows users to flexibly adjust the shape according to aesthetic needs or plant growth status, while ensuring the installation stability of the plant pots, providing an efficient and convenient solution for hanging plant shaping.

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Abstract

The utility model relates to the technical field of plant modeling, particularly to a prefabricated inverted plant modeling tool, comprising: a supporting mechanism, independently fixedly arranged; a supporting beam, two ends of which are respectively provided with connecting mechanisms, and the two connecting mechanisms are connected with the supporting mechanism respectively; two driving mechanisms, installed on the supporting mechanism, the two driving mechanisms are installed in cooperation with the two connecting mechanisms respectively, and the driving mechanism is used for adjusting the working height of the supporting beam driven by the connecting mechanism; a mounting seat, slidingly installed along the length direction of the supporting beam, provided with a screw on the mounting seat, the screw is used for locking the connecting position of the mounting seat and the supporting beam, and at least one mounting seat is installed on the supporting beam; a positioning piece, installed on the mounting seat; a supporting frame, installed on the mounting seat through the positioning piece, and the bolt on the supporting frame is connected with the positioning piece in cooperation with the thread; the layout is flexible to adjust, improves plant growth effect and visual aesthetic feeling.
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Description

Technical Field

[0001] This utility model relates to the technical field of plant shaping, and in particular to a prefabricated hanging plant shaping tool. Background Technology

[0002] With the continuous development of urban greening and landscape design, trailing plants have been widely used in landscaping, vertical greening, and interior decoration due to their unique ornamental value and space utilization advantages. Trailing plants are usually fixed and guided by special supports or shaping tools to achieve an aesthetically pleasing and stable growth posture.

[0003] Traditional hanging plant shaping tools generally adopt a welded or assembled structure, and the overall height and installation position are not adjustable, resulting in poor adaptability to different spatial environments. Due to the lack of height adjustment function, they cannot be flexibly adjusted according to the plant growth stage or the layout of the site, which affects the plant growth effect and visual aesthetics. Utility Model Content

[0004] To solve the above-mentioned technical problems, this utility model provides a prefabricated hanging plant shaping tool that offers flexible layout adjustment, improves plant growth, and enhances visual appeal.

[0005] This utility model discloses a prefabricated hanging plant shaping tool, comprising: The support structure is independently and fixedly installed. The support beam has connecting mechanisms installed at both ends, and the two connecting mechanisms are respectively connected to the support mechanism; Two drive mechanisms are installed on the support mechanism. The two drive mechanisms are respectively installed in conjunction with two connecting mechanisms. The drive mechanisms are used by the connecting mechanisms to adjust the working height of the support beam. The mounting base is slidably installed along the length of the support beam. The mounting base is equipped with screws, which are used to lock the connection between the mounting base and the support beam. At least one mounting base is installed on the support beam. Positioning element, installed on the mounting base; The support frame is mounted on the mounting base via positioning elements, and the bolts on the support frame are threadedly connected to the positioning elements.

[0006] As a preferred embodiment of this utility model, the support mechanism includes: The base plate has multiple fixing holes; Two support columns are symmetrically installed on the base plate, and the support columns are provided with threaded grooves. Two connecting mechanisms are slidably installed on the two support columns respectively. The fixing plate is installed on the top of the two support columns and has an L-shaped structure with multiple assembly holes.

[0007] As a preferred embodiment of this utility model, at least one support beam is installed on each of the two support columns.

[0008] As a preferred embodiment of this utility model, the connecting mechanism includes: A hollow shaft is installed at the end of the support beam, and the hollow shaft is slidably connected to the support column; The mounting component is installed on the hollow shaft, and a drive shaft is rotatably mounted in the through hole of the mounting component; The threaded column is coaxially mounted on the drive shaft, and the threaded column and the support column are fitted together by the threaded groove. The transmission mechanism is mounted on the drive mechanism and is used to drive the threaded column to rotate.

[0009] As a preferred embodiment of this utility model, the transmission mechanism includes: An extension shaft is mounted on the drive mechanism. The extension shaft is connected to the shaft cavity of the transmission shaft. The extension shaft drives the transmission shaft to rotate, and the extension shaft is slidably set along the length of the transmission shaft. The threaded rod is installed in the threaded through hole of the drive shaft. The threaded rod is used to lock the connection position between the extension shaft and the drive shaft.

[0010] As a preferred embodiment of this utility model, the driving mechanism includes: The power shaft is rotatably connected to the base plate and the fixed plate respectively, and the power shaft is set parallel to the axis of the support column. The extension shaft rotates synchronously with the power shaft and is slidably installed along the length of the power shaft. The servo motor is mounted on a fixed plate, and the power shaft is coaxially mounted on the output end of the servo motor.

[0011] As a preferred embodiment of this utility model, the two servo motors on the two drive mechanisms are controlled to start and stop synchronously.

[0012] As a preferred embodiment of this utility model, the support frame is configured as a C-shaped structure for positioning and placing plant pots. The size of the support frame and the installation spacing are adjustable according to the plant pots.

[0013] Compared with existing technologies, the advantages of this utility model are as follows: The support mechanism, as a basic fixed structure, is independently fixed to the ground, wall, or auxiliary frame, providing a stable installation foundation for the entire tool and adapting to various installation scenarios. The connecting mechanisms at both ends of the support beam are connected to the support mechanism, and together with the drive mechanism, the working height of the support beam can be precisely adjusted. The planting height can be flexibly adjusted according to the plant growth needs or spatial layout. The mounting seat slides along the support beam and is locked in position by screws, and can be fixed at any position on the support beam. Combined with the setting of at least one mounting seat, it meets the installation needs of different numbers and spacings of plant pots. The positioning component is connected to the support frame by bolts and threads, ensuring that the support frame is stably installed while facilitating disassembly and position adjustment, so that the plant pots can be precisely positioned according to the shaping requirements. Through the height-adjustable and position-sliding locking structural design, this tool significantly improves the adaptability to different spatial environments and plant types compared with traditional fixed shaping tools. It allows users to flexibly adjust the shape according to aesthetic needs or plant growth status, while ensuring the installation stability of the plant pots, providing an efficient and convenient solution for hanging plant shaping. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the structure of a prefabricated inverted plant shaping tool of this utility model at a first angle; Figure 2 This is a schematic diagram of the structure of a prefabricated inverted plant shaping tool in this utility model at a second angle; Figure 3 This is a schematic diagram of the support frame structure of a prefabricated inverted plant shaping tool according to this utility model; Figure 4 This is a schematic diagram of the connection mechanism of a prefabricated hanging plant shaping tool in this utility model; The following are labels in the attached diagram: 1. Support mechanism; 11. Base plate; 12. Support column; 13. Fixing plate; 2. Support beam; 3. Connecting mechanism; 31. Hollow shaft; 32. Mounting component; 33. Drive shaft; 34. Threaded column; 35. Transmission mechanism; 35a. Extension shaft; 35b. Threaded rod; 4. Drive mechanism; 41. Power shaft; 42. Servo motor; 5. Mounting base; 6. Screw; 7. Positioning component; 8. Support frame; 9. Bolt. Detailed Implementation

[0015] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0016] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0017] like Figures 1 to 4 As shown, this embodiment provides a prefabricated hanging plant shaping tool, including: Support mechanism 1 is the basic fixed structure of the entire modeling tool, which is independently fixed to the ground, wall or auxiliary frame; The support beam 2 has a connecting mechanism 3 installed at both ends, and the two connecting mechanisms 3 are respectively connected to the support mechanism 1; Two drive mechanisms 4 are installed on the support mechanism 1. The two drive mechanisms 4 are respectively installed in conjunction with two connecting mechanisms 3. The drive mechanisms 4 are used to adjust the working height of the support beam 2 driven by the connecting mechanisms 3. Mounting base 5 is slidably installed along the length of support beam 2. Screws 6 are provided on mounting base 5. Screws 6 are used to lock the connection position between mounting base 5 and support beam 2. At least one mounting base 5 is installed on support beam 2. Positioning component 7 is installed on mounting base 5; The support frame 8 is installed on the mounting base 5 through the positioning part 7, and the bolts 9 on the support frame 8 are threadedly connected to the positioning part 7. The support frame 8 is used to place plant planting pots. In this embodiment, the support mechanism 1 is independently fixed to the ground, wall, or auxiliary frame as a basic fixing structure, providing a stable installation base for the entire tool and adapting to various installation scenarios. The connecting mechanisms 3 at both ends of the support beam 2 are connected to the support mechanism 1, and together with the drive mechanism 4, the working height of the support beam 2 can be precisely adjusted. The planting height can be flexibly adjusted according to the plant growth needs or spatial layout. The mounting base 5 slides along the support beam 2 and is locked in position by screws 6, and can be fixed at any position on the support beam 2. With the setting of at least one mounting base 5, the installation needs of plant pots of different numbers and spacings can be met. The positioning component 7 is threadedly connected to the support frame 8 by bolts 9, ensuring that the support frame 8 is stably installed while facilitating disassembly and position adjustment, so that the plant pots can be precisely positioned according to the shaping requirements. This tool, through its height-adjustable and position-sliding locking structural design, significantly improves the adaptability to different spatial environments and plant types compared to traditional fixed shaping tools. It allows users to flexibly adjust the shape according to aesthetic needs or plant growth status, while ensuring the installation stability of the plant pots, providing an efficient and convenient solution for hanging plant shaping.

[0018] As a preferred embodiment of the above technical solution, such as Figures 1 to 2 As shown, the support mechanism 1 includes: The base plate 11 has multiple fixing holes; Two support columns 12 are symmetrically installed on the base plate 11, and the support columns 12 are provided with threaded grooves. Two connecting mechanisms 3 are slidably installed on the two support columns 12 respectively. The fixing plate 13 is installed on the top of the two support columns 12, and the fixing plate 13 has an L-shaped structure and multiple assembly holes. At least one support beam 2 is installed on each of the two support columns 12; In this embodiment, the multiple fixing holes on the base plate 11 can be used to firmly fix the support mechanism 1 to the ground, wall or auxiliary frame through bolts and other connectors to adapt to different installation scenarios. The two support columns 12 symmetrically installed on the base plate 11 have threaded grooves that provide a precise sliding track for the connecting mechanism 3, ensuring that the support beam 2 moves smoothly during height adjustment. The fixing plate 13 is installed on the top of the support column 12. Its L-shaped structure not only enhances the structural stability of the support column 12, but also provides an installation interface for auxiliary equipment or upper structure through multiple assembly holes, expanding the functionality of the tool. The design of installing at least one support beam 2 on each of the two support columns 12 allows users to increase the number of support beams 2 according to actual needs, flexibly adjust the layout density of plant planting pots, and meet the needs of different scales of hanging plant shapes.

[0019] As a preferred embodiment of the above technical solution, such as Figures 1 to 3 As shown, the connecting mechanism 3 includes: Hollow shaft 31 is installed at the end of support beam 2, and hollow shaft 31 is slidably connected to support column 12; Mounting component 32 is mounted on hollow shaft 31, and drive shaft 33 is rotatably mounted in through hole of mounting component 32; The threaded post 34 is coaxially mounted on the drive shaft 33, and the threaded post 34 is fitted with the threaded groove of the support post 12. Transmission mechanism 35 is mounted on drive mechanism 4. Transmission mechanism 35 is used to drive mechanism 4 to drive threaded column 34 to rotate. The transmission mechanism 35 includes: An extension shaft 35a is mounted on the drive mechanism 4. The extension shaft 35a is connected to the shaft cavity of the transmission shaft 33. The extension shaft 35a drives the transmission shaft 33 to rotate, and the extension shaft 35a is slidably arranged along the length direction of the transmission shaft 33. The threaded rod 35b is installed in the threaded through hole of the drive shaft 33. The threaded rod 35b is used to lock the connection position between the extension shaft 35a and the drive shaft 33. In this embodiment, the sliding connection between the hollow shaft 31 and the support column 12 provides a stable lifting track for the support beam 2, ensuring that it does not deviate during adjustment. The drive shaft 33, rotatably mounted on the mounting component 32, cooperates with the threaded column 34 on the coaxial support column 12 to convert the power of the drive mechanism 4 into the linear motion of the support beam 2. The high precision characteristics of the threaded transmission are used to achieve precise height control. The extension shaft 35a in the transmission mechanism 35 cooperates with the shaft cavity of the drive shaft 33, which not only ensures the power transmission of the drive mechanism 4, but also allows the extension shaft 35a to move freely. Sliding along the length of the drive shaft 33, it adapts to the adjustment needs of different height positions of the support beam 2. The threaded rod 35b locks the connection position between the extension shaft 35a and the drive shaft 33, ensuring that slippage does not occur during power transmission and improving adjustment stability. When only a specific support beam 2 needs to be adjusted in height, the extension shaft 35a on the other support beams 2 is disengaged from the shaft cavity of the drive shaft 33. At this time, the drive mechanism 4 only drives the support beam 2 that is engaged with the shaft cavity of the drive shaft 33 to adjust, meeting the spatial layout needs of different plant growth stages.

[0020] As a preferred embodiment of the above technical solution, such as Figures 1 to 2 As shown, the drive mechanism 4 includes: The power shaft 41 is rotatably connected to the base plate 11 and the fixed plate 13 respectively, and the power shaft 41 is arranged parallel to the axis of the support column 12. The extension shaft 35a rotates synchronously with the power shaft 41, and the extension shaft 35a is slidably installed along the length of the power shaft 41. Servo motor 42 is mounted on fixed plate 13, and power shaft 41 is coaxially mounted on the output end of servo motor 42; The two servo motors 42 on the two drive mechanisms 4 are controlled to start and stop synchronously; In this embodiment, the power shaft 41 is rotatably connected to the base plate 11 and the fixed plate 13, and is set parallel to the axis of the support column 12, providing stable rotational support and guidance for the extension shaft 35a, ensuring the smoothness of power transmission. The extension shaft 35a rotates synchronously with the power shaft 41 and is slidably installed along its length, which can not only achieve reliable power transmission, but also flexibly adjust the connection state with the transmission shaft 33 as needed to meet the height adjustment requirements of single or multiple support beams 2. The servo motor 42 is installed on the fixed plate 13 and coaxially connected to the power shaft 41. Utilizing the high precision and fast response characteristics of the servo motor 42, the speed and direction of the power shaft 41 are precisely controlled, thereby achieving precise adjustment of the height of the support beam 2. The servo motors 42 on the two drive mechanisms 4 are synchronously started and stopped, ensuring the consistency of multiple support beams 2 during synchronous adjustment, avoiding uneven structural stress or tilting of the plant pot due to asynchronous adjustment, and improving the overall stability and reliability of adjustment.

[0021] As a preferred embodiment of the above technical solution, such as Figures 1 to 4As shown, the support frame 8 is set as a C-shaped structure, which is used to position and place the plant pots. The size and installation spacing of the support frame 8 are adjusted according to the plant pots. In this embodiment, the C-shaped opening design facilitates quick insertion or removal of plant pots, simplifying plant replacement and maintenance. Simultaneously, its wraparound structure provides stable lateral support, preventing the plant pots from wobbling or tipping over. The size of the support frame 8 can be adjusted according to the size of the plant pots, ensuring a tight fit and reliable fixation for different sizes of plant pots, avoiding loosening due to size mismatch. By adjusting the position and number of mounting seats 5 on the support beam 2, the installation spacing of the support frame 8 can be flexibly set to adapt to different plant growth space requirements and design shapes, such as densely arranged to create a curtain effect or sparsely distributed to highlight the shape of a single plant, thus improving the tool's practicality and applicability.

[0022] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.

Claims

1. A prefabricated hanging plant shaping tool, characterized in that, include: Support mechanism (1) is independently and fixedly installed; The support beam (2) has a connecting mechanism (3) installed at both ends, and the two connecting mechanisms (3) are respectively connected to the support mechanism (1); Two drive mechanisms (4) are installed on the support mechanism (1). The two drive mechanisms (4) are respectively installed in cooperation with the two connecting mechanisms (3). The drive mechanisms (4) are used to adjust the working height of the support beam (2) driven by the connecting mechanisms (3). Mounting base (5) is slidably installed along the length direction of the support beam (2). The mounting base (5) is provided with screws (6). The screws (6) are used to lock the connection position between the mounting base (5) and the support beam (2). At least one mounting base (5) is installed on the support beam (2). Positioning element (7) is installed on the mounting base (5); The support frame (8) is mounted on the mounting base (5) via the positioning element (7), and the bolts (9) on the support frame (8) are threadedly connected to the positioning element (7).

2. The prefabricated hanging plant shaping tool as described in claim 1, characterized in that, The support mechanism (1) includes: The base plate (11) is provided with multiple fixing holes; Two support columns (12) are symmetrically installed on the base plate (11), and the support columns (12) are provided with threaded grooves. The two connecting mechanisms (3) are slidably installed on the two support columns (12). A fixing plate (13) is installed on the top of the two support columns (12), and the fixing plate (13) is provided with an L-shaped structure and multiple assembly holes.

3. The prefabricated hanging plant shaping tool as described in claim 2, characterized in that, At least one support beam (2) is installed on each of the two support columns (12).

4. The prefabricated hanging plant shaping tool as described in claim 2, characterized in that, The connecting mechanism (3) includes: A hollow shaft (31) is installed at the end of the support beam (2), and the hollow shaft (31) is slidably connected to the support column (12); Mounting component (32) is mounted on the hollow shaft (31), and a drive shaft (33) is rotatably mounted in the through hole of the mounting component (32). A threaded column (34) is coaxially mounted on the drive shaft (33), and the threaded column (34) is fitted with the threaded groove of the support column (12). A transmission mechanism (35) is mounted on the drive mechanism (4). The transmission mechanism (35) is used by the drive mechanism (4) to drive the threaded column (34) to rotate.

5. The prefabricated hanging plant shaping tool as described in claim 4, characterized in that, The transmission mechanism (35) includes: An extension shaft (35a) is mounted on the drive mechanism (4). The extension shaft (35a) is connected to the shaft cavity of the transmission shaft (33). The extension shaft (35a) drives the transmission shaft (33) to rotate, and the extension shaft (35a) is slidably arranged along the length direction of the transmission shaft (33). A threaded rod (35b) is installed in the threaded through hole of the drive shaft (33), and the threaded rod (35b) is used to lock the connection position between the extension shaft (35a) and the drive shaft (33).

6. The prefabricated hanging plant shaping tool as described in claim 5, characterized in that, The drive mechanism (4) includes: The power shaft (41) is rotatably connected to the base plate (11) and the fixed plate (13) respectively, and the power shaft (41) is parallel to the axis of the support column (12). The extension shaft (35a) rotates synchronously with the power shaft (41), and the extension shaft (35a) is slidably installed along the length direction of the power shaft (41). The servo motor (42) is mounted on the fixed plate (13), and the power shaft (41) is coaxially mounted on the output end of the servo motor (42).

7. The prefabricated hanging plant shaping tool as described in claim 6, characterized in that, The two servo motors (42) on the two drive mechanisms (4) are synchronously started and stopped.

8. The prefabricated hanging plant shaping tool as described in claim 1, characterized in that, The support frame (8) is configured as a C-shaped structure for positioning and placing plant pots. The size and installation spacing of the support frame (8) are adjusted according to the plant pots.