Water mist cultivation plant supporting structure

By designing a highly adjustable water mist cultivation plant support structure, the problem of inflexible design of the existing support frame is solved, and adapting to different environments and plant growth needs is achieved, which significantly improves the application range and effect of water mist cultivation technology.

CN222941444UActive Publication Date: 2025-06-06CHONGQING WUSHUISHANGENG AGRICULTURAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422024945.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-20
Publication Date
2025-06-06
Estimated Expiration
2034-08-20

AI Technical Summary

Technical Problem

The support frame in the existing water mist cultivation system is designed to be fixed and inflexible, making it difficult to adapt to different environments and plant growth needs, limiting the application scope and effect of water mist cultivation technology.

Method used

A water mist cultivation plant support structure including columns, longitudinal beams, cross beams and adjustment nuts is designed. By adjusting the nuts, the height of the columns can be adjusted to adapt to the growth needs of different plants.

Benefits of technology

This support structure has high flexibility and stability, and can be precisely adjusted according to the specific needs of the plant, which significantly improves the application range and actual effect of water mist cultivation technology.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of water mist cultivation, and particularly relates to a water mist cultivation plant supporting structure which comprises two sets of stand columns and longitudinal beams, and each set of stand columns comprises at least two stand columns arranged at intervals. Each group of longitudinal beams comprises at least one longitudinal beam, and the longitudinal beams are arranged at the tops of the stand columns and connected to the stand columns; the water mist cultivation plant supporting structure further comprises a base and at least two cross beams, the cross beams are located below the longitudinal beams, and the two ends of the cross beams are connected to the stand columns respectively. The multiple bases correspond to the stand columns in a one-to-one mode, center holes are formed in the stand columns, and studs with adjusting nuts are arranged on the bases; the stand column is arranged on the stud in a sleeving mode and abuts against the adjusting nut in a pressing mode. When the adjusting nut is rotated, the extension length of the stud in the center hole can be changed. In this way, the supporting structure has more abundant adjusting functions, and therefore the adaptive capacity to the environment and plants is improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of water mist cultivation, and in particular relates to a water mist cultivation plant support structure. Background Art

[0002] With the continuous progress and innovation of modern agricultural technology, water mist cultivation technology, as an efficient, environmentally friendly and water-saving planting method, is gradually becoming a highlight in the agricultural field and is gaining more and more attention from agricultural experts and growers around the world. This technology can not only significantly improve the utilization efficiency of water resources, but also effectively reduce the problems of pests and diseases that may occur in traditional soil planting, while also having relatively little negative impact on the environment.

[0003] In existing water mist cultivation systems, support frames are usually used to support and fix the water mist cultivation tank to ensure the stability and reliability of the entire cultivation system. However, these support frames often adopt a fixed structure design, which lacks flexibility and adjustability. This fixed design makes the support frame appear powerless when facing different cultivation environments, and it is difficult to make effective adjustments to adapt to changing external conditions. For example, in a greenhouse, environmental factors such as light, temperature, and humidity will change with the change of seasons and weather, and fixed support frames cannot provide enough adjustment space to cope with these changes.

[0004] In addition, there are many varieties of plants, and different plants have significantly different requirements for the growing environment. For example, some plants may need more light, while others may have different requirements for water or nutrients. Due to its design limitations, the current fixed support frame cannot be adjusted accordingly according to the specific needs of different crops, which greatly limits the application scope and effect of water mist cultivation technology.

[0005] Therefore, there is an urgent need to develop a more reasonable technical solution to improve the practicability and popularity of water mist cultivation technology, so that the supporting structure has richer adjustment functions, thereby improving its adaptability to the environment and plants. Utility Model Content

[0006] The utility model aims to provide a water mist plant cultivation support structure, so that the support structure has more abundant regulating functions, thereby improving the adaptability to the environment and plants.

[0007] In order to achieve the above-mentioned object, the utility model provides a water mist plant cultivation support structure, comprising two groups of columns and longitudinal beams, each group of columns comprising at least two columns arranged at intervals; each group of longitudinal beams comprising at least one longitudinal beam, the longitudinal beam being arranged at the top of the column and connected to the column;

[0008] The water mist plant cultivation support structure also includes a base and at least two crossbeams, wherein the crossbeams are located below the longitudinal beams, and the two ends of the crossbeams are respectively connected to the columns; the bases are provided in a plurality and are arranged one by one corresponding to the columns, wherein a central hole is provided in the column, and a stud with an adjusting nut is provided on the base; the column is sleeved on the stud and pressed against the adjusting nut; when the adjusting nut is rotated, the elongated length of the stud in the central hole can be changed;

[0009] The extending direction of the cross beam is parallel to the X axis, the extending direction of the longitudinal beam is parallel to the Y axis, and the extending direction of the column is parallel to the Z axis.

[0010] Optionally, the longitudinal beam is connected to the column via a first connecting member; the first connecting member comprises a U-shaped first clamping plate, the top of the first clamping plate is formed as a first positioning groove adapted to the longitudinal beam, and the side of the first clamping plate is provided with a first limiting groove fitted to the column; the first clamping plate is sleeved on the longitudinal beam and fitted to the column;

[0011] The first clamping plate is also provided with a first through hole adapted to the first bolt. The first bolt passes through the first through holes on the two sides of the first clamping plate and is connected to the first locking nut, so that the first clamping plate can be tightly clamped on the longitudinal beam and the column to maintain the position of the longitudinal beam relative to the column.

[0012] Optionally, the column is connected to the crossbeam through a second connecting member; the second connecting member includes a U-shaped second clamping plate, the top of the second clamping plate is formed as a second positioning groove adapted to the column, and the side of the second clamping plate is provided with a second limiting groove fitted to the crossbeam; the second clamping plate is sleeved on the column and fitted to the crossbeam;

[0013] The second clamping plate is also provided with a second through hole adapted to the second bolt. The second bolt passes through the second through holes on the two sides of the second clamping plate and is connected to the second locking nut, so that the second clamping plate can be tightly clamped on the column and the beam to maintain the position of the column relative to the beam.

[0014] Optionally, the base is disc-shaped.

[0015] Optionally, the stud is threadedly connected to the base.

[0016] Optionally, the longitudinal beam includes at least two sections of sub-beams, and adjacent sub-beams are plugged into each other.

[0017] Each set of columns includes at least two columns spaced apart, providing the main vertical support for the entire structure. The columns are provided with a central hole for mating with the studs of the base to achieve height adjustment. Each set of longitudinal beams includes at least one longitudinal beam, which is located on top of the columns and connected between the columns. The main function of the longitudinal beam is to increase the lateral stability of the structure and serve as a framework for hanging or supporting plants.

[0018] Each base is provided with a stud, and an adjusting nut is sleeved on the stud. By rotating the adjusting nut, the elongated length of the stud in the center hole of the column can be changed, thereby achieving fine adjustment of the height of the column. In this way, the elongated length of the stud can be adjusted by rotating the adjusting nut, thereby conveniently adjusting the height of the column, so that the support structure can adapt to plant cultivation environments with different height requirements.

[0019] The coordination of the columns, longitudinal beams and cross beams forms a stable frame structure. The extension directions of the cross beams and longitudinal beams are parallel to the X-axis and Y-axis respectively, while the extension direction of the columns is parallel to the Z-axis. This layout ensures the stability of the structure in three-dimensional space. At the same time, the design of the support structure is simple and clear, and the connection between the various components is clear and easy to understand, making installation and maintenance work relatively easy.

[0020] Through the implementation of the above technical solutions, the water mist plant cultivation support structure has demonstrated its unique flexibility, especially in terms of height adjustment, which enables it to easily adapt to various plant growth needs. This support structure is not only highly stable, but also can be accurately adjusted according to the specific growth environment of the plant, thereby significantly improving the application scope and actual effect of water mist cultivation technology, and is particularly applicable in a variety of water mist plant cultivation scenarios.

[0021] Whether it is a small planting on a family balcony, a delicate layout in an indoor garden, or a large-scale planting in a large agricultural greenhouse, this water mist plant support structure can be flexibly configured and adjusted according to actual needs, and can meet the specific requirements of different plants for the growth environment. Whether it is light, humidity or nutrient supply, it can be optimized through this support structure. In this way, both amateurs and professional growers can use this support structure to achieve more efficient and scientific water mist cultivation, thereby obtaining better plant growth effects and higher yields.

[0022] Other features and advantages of the present invention will be described in detail in the subsequent specific implementation section. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the following specific embodiments, they are used to explain the present invention, but do not constitute a limitation to the present invention. In the accompanying drawings:

[0024] Figure 1 is a schematic diagram of the three-dimensional structure of a water mist plant cultivation support structure in one embodiment;

[0025] Figure 2 yes Figure 1 Part A is a schematic diagram of the enlarged structure in one embodiment.

[0026] Description of Reference Numerals

[0027] 1-column, 2-longitudinal beam, 3-cross beam, 4-base, 5-stud, 6-adjusting nut, 7-first clamping plate, 8-second clamping plate, 91-first bolt, 92-second bolt. DETAILED DESCRIPTION

[0028] The specific implementation of the utility model is described in detail below with reference to the accompanying drawings.

[0029] According to a specific embodiment of the present disclosure, a water mist plant cultivation support structure is provided, wherein: Figure 1 and Figure 2 One specific implementation method is shown.

[0030] See also Figure 1 and Figure 2 As shown, the water mist plant cultivation support structure includes two groups of columns 1 and longitudinal beams 2, each group of columns includes at least two columns 1 arranged at intervals; each group of longitudinal beams 2 includes at least one longitudinal beam 2, and the longitudinal beam 2 is arranged at the top of the column 1 and connected to the column 1; the water mist plant cultivation support structure also includes a base 4 and at least two cross beams 3, the cross beam 3 is located below the longitudinal beam 2, and the two ends of the cross beam 3 are respectively connected to the column 1; the base 4 is configured in multiple and is arranged one-to-one with the column 1, wherein a center hole is provided in the column 1, and a stud 5 with an adjusting nut 6 is provided on the base 4; the column 1 is sleeved on the stud 5 and pressed against the adjusting nut 6; when the adjusting nut 6 is rotated, the elongation length of the stud 5 in the center hole can be changed; wherein, the extension direction of the cross beam 3 is parallel to the X-axis, the extension direction of the longitudinal beam 2 is parallel to the Y-axis, and the extension direction of the column 1 is parallel to the Z-axis.

[0031] Each set of columns 1 includes at least two columns 1 arranged at intervals, providing the main vertical support for the entire structure. A central hole is provided in the column 1 for cooperating with the stud 5 of the base 4 to achieve height adjustment. Each set of longitudinal beams 2 includes at least one longitudinal beam 2, which is located at the top of the columns 1 and connected between the columns 1. The main function of the longitudinal beams 2 is to increase the lateral stability of the structure and serve as a skeleton for hanging or supporting plants.

[0032] Each base 4 is provided with a stud 5, and an adjusting nut 6 is sleeved on the stud 5. By rotating the adjusting nut 6, the extension length of the stud 5 in the central hole of the column 1 can be changed, thereby achieving fine adjustment of the height of the column 1. In this way, the extension length of the stud 5 can be adjusted by rotating the adjusting nut 6, thereby conveniently adjusting the height of the column 1, so that the support structure can adapt to plant cultivation environments with different height requirements.

[0033] The mutual cooperation of the column 1, the longitudinal beam 2 and the cross beam 3 forms a stable frame structure. The extension directions of the cross beam 3 and the longitudinal beam 2 are parallel to the X-axis and the Y-axis respectively, while the extension direction of the column 1 is parallel to the Z-axis. This layout ensures the stability of the structure in three-dimensional space. At the same time, the design of the support structure is simple and clear, and the connection between the various components is clear and easy to understand, making installation and maintenance work relatively easy.

[0034] Through the implementation of the above technical solutions, the water mist plant cultivation support structure has demonstrated its unique flexibility, especially in terms of height adjustment, which enables it to easily adapt to various plant growth needs. This support structure is not only highly stable, but also can be accurately adjusted according to the specific growth environment of the plant, thereby significantly improving the application scope and actual effect of water mist cultivation technology, and is particularly applicable in a variety of water mist plant cultivation scenarios.

[0035] Whether it is a small planting on a family balcony, a delicate layout in an indoor garden, or a large-scale planting in a large agricultural greenhouse, this water mist plant support structure can be flexibly configured and adjusted according to actual needs, and can meet the specific requirements of different plants for the growth environment. Whether it is light, humidity or nutrient supply, it can be optimized through this support structure. In this way, both amateurs and professional growers can use this support structure to achieve more efficient and scientific water mist cultivation, thereby obtaining better plant growth effects and higher yields.

[0036] In an embodiment provided in the present disclosure, the longitudinal beam 2 is connected to the column 1 through a first connecting member; the first connecting member includes a U-shaped first clamping plate 7, the top of the first clamping plate 7 is formed as a first positioning groove adapted to the longitudinal beam 2, and the side of the first clamping plate 7 is provided with a first limiting groove fitted with the column 1; the first clamping plate 7 is sleeved on the longitudinal beam 2 and fits with the column 1.

[0037] The first clamping plate 7 is also provided with a first through hole adapted to the first bolt 91 . The first bolt 91 passes through the first through holes on two sides of the first clamping plate 7 and is connected to the first locking nut, so that the first clamping plate 7 can be tightly clamped on the longitudinal beam 2 and the column 1 to maintain the position of the longitudinal beam 2 relative to the column 1 .

[0038] As the core component of the connector, the design of the U-shaped first clamping plate 7 cleverly combines wrapping and stability. Its U-shaped structure enables the clamping plate to contact and wrap multiple surfaces of the longitudinal beam 2 and the column 1 at the same time, thereby increasing the contact area and friction of the connection.

[0039] Specifically, the first positioning groove at the top of the first clamping plate 7 is adapted in shape to the longitudinal beam 2, ensuring that the longitudinal beam 2 can be accurately positioned during the connection process, avoiding the problem of loose connection due to position deviation. The side of the first clamping plate 7 is provided with a first limiting groove that fits with the column 1, limiting the movement range of the first clamping plate 7 on the column 1, further enhancing the stability of the connection. At the same time, the close fit between the limiting groove and the column 1 also provides additional friction, which helps prevent the connector from loosening when subjected to force.

[0040] During assembly, the first clamping plate 7 is sleeved on the longitudinal beam 2, and it is ensured that the first positioning groove on the top thereof is tightly fitted with the longitudinal beam 2. Subsequently, the side of the clamping plate is fitted on the column 1, so that the first limiting groove is in close contact with the side of the column 1. First through holes adapted to the first bolts 91 are provided on the two side surfaces of the first clamping plate 7. The first bolts 91 are passed through these through holes, and the first locking nut is tightened on the other side. As the first locking nut is tightened, the first bolt 91 exerts an inward pressure on the clamping plate, so that the first clamping plate 7 can be tightly clamped between the longitudinal beam 2 and the column 1. The fastening method not only ensures the stability of the connection, but also allows the tightness of the connection to be fine-tuned by adjusting the tightness of the first locking nut when necessary, which is also convenient for subsequent maintenance and replacement.

[0041] In an embodiment provided in the present disclosure, the column 1 is connected to the beam 3 through a second connecting member; the second connecting member includes a U-shaped second clamping plate 8, the top of the second clamping plate 8 is formed as a second positioning groove adapted to the column 1, and the side of the second clamping plate 8 is provided with a second limiting groove fitted with the beam 3; the second clamping plate 8 is sleeved on the column 1 and fits with the beam 3.

[0042] The second clamping plate 8 is also provided with a second through hole adapted to the second bolt 92 . The second bolt 92 passes through the second through holes on the two sides of the second clamping plate 8 and is connected to the second locking nut, so that the second clamping plate 8 can be tightly clamped on the column 1 and the beam 3 to maintain the position of the column 1 relative to the beam 3 .

[0043] Similar to the first connecting member, the second connecting member also adopts a U-shaped clamping plate design, so that the second clamping plate 8 can wrap multiple surfaces of the column 1 and the beam 3 at the same time, thereby increasing the contact area and stability of the connection.

[0044] The second positioning groove at the top of the second clamping plate 8 is adapted in shape to the column 1, so that the column 1 can be accurately positioned in the clamping plate during the connection process, avoiding the problem of loose connection due to position deviation. The side of the second clamping plate 8 is provided with a second limiting groove that fits with the crossbeam 3, limiting the movement range of the second clamping plate 8 on the crossbeam 3, and enhancing the stability of the connection. At the same time, the close fit between the limiting groove and the crossbeam 3 also provides additional friction, which helps to prevent the connector from loosening when subjected to force.

[0045] During assembly, first sleeve the second clamping plate 8 onto the column 1, and ensure that the second positioning groove on the top thereof is tightly fitted with the column 1. Subsequently, fit the side of the clamping plate onto the beam 3, so that the second limiting groove is in close contact with the side of the beam 3. Second through holes adapted to the second bolts 92 are provided on the two side surfaces of the second clamping plate 8. Pass the second bolts 92 through these through holes, and tighten the second locking nut on the other side. As the second locking nut is tightened, the second bolt 92 exerts an inward pressure on the clamping plate, so that the clamping plate can be tightly clamped between the column 1 and the beam 3. The tightening method can ensure the stability of the connection, and allows the tightness of the connection to be fine-tuned by adjusting the tightness of the nut when necessary.

[0046] In the present disclosure, the base 4 is disc-shaped. The disc-shaped design makes the bottom surface area of ​​the base 4 relatively large, thereby providing better stability. When supporting the entire structure, the larger bottom surface area can disperse the weight and force from the upper structure, reduce the pressure on the ground, and prevent overturning due to unstable center of gravity. At the same time, the geometric shape of the disc-shaped base 4 helps to achieve better balance. Since the disc is symmetrical in all directions, no matter how the weight of the upper structure is distributed, the base 4 can provide uniform support force to ensure the balance of the entire structure. In this way, the disc-shaped base 4 can provide stable, balanced and adaptable support, thereby improving the aesthetics and maintainability of the entire structure.

[0047] In one embodiment, the stud 5 is threadedly connected to the base 4. When the threaded holes of the stud 5 and the base 4 are engaged with each other, a strong friction force can be generated between the stud 5 and the base 4 by rotating the stud 5, thereby achieving a stable connection. This connection method can resist large tensile and shear forces, ensuring that the entire structure will not loosen or separate when subjected to force.

[0048] Another advantage of the threaded connection is that it is easy to install and remove. During installation, just align the stud 5 with the threaded hole of the base 4 and then rotate the stud 5 to fix it. If it needs to be removed, just rotate the stud 5 in the opposite direction to easily remove it from the base 4. This operation is simple and quick, and does not require complicated tools or skills.

[0049] Since the stud 5 is connected to the base 4 via threads, the position or tightening degree of the stud 5 on the base 4 can be adjusted by rotating the stud 5, so that the entire structure can be more easily adapted to different needs and environmental conditions during installation.

[0050] Optionally, the longitudinal beam 2 includes at least two sections of sub-beams, and adjacent sub-beams are plugged into each other. By dividing the longitudinal beam 2 into multiple sections of sub-beams and connecting them by plugging, a modular design of the structure is achieved, making the manufacturing, transportation and installation processes more flexible and convenient. Each section of the sub-beam can be manufactured and transported independently, and then assembled on site, which greatly reduces the construction difficulty and cost. It is also convenient to increase or decrease the number of sub-beams according to usage requirements, thereby better adapting to the application environment.

[0051] The preferred embodiments of the present invention are described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the specific details in the above embodiments. Within the technical concept of the present invention, the technical solution of the present invention can be subjected to a variety of simple modifications, and these simple modifications all belong to the protection scope of the present invention.

Claims

1. A water mist plant cultivation support structure, characterized in that: It comprises two groups of columns and longitudinal beams, each group of columns comprises at least two columns arranged at intervals; each group of longitudinal beams comprises at least one longitudinal beam, and the longitudinal beam is arranged on the top of the column and connected to the column; The water mist plant cultivation support structure also includes a base and at least two crossbeams, wherein the crossbeams are located below the longitudinal beams, and the two ends of the crossbeams are respectively connected to the columns; the bases are provided in a plurality and are arranged one by one corresponding to the columns, wherein a central hole is provided in the column, and a stud with an adjusting nut is provided on the base; the column is sleeved on the stud and pressed against the adjusting nut; when the adjusting nut is rotated, the elongated length of the stud in the central hole can be changed; The extending direction of the cross beam is parallel to the X axis, the extending direction of the longitudinal beam is parallel to the Y axis, and the extending direction of the column is parallel to the Z axis.

2. The water mist plant cultivation support structure according to claim 1, characterized in that: The longitudinal beam is connected to the column through a first connecting member; the first connecting member includes a U-shaped first clamping plate, the top of the first clamping plate is formed as a first positioning groove adapted to the longitudinal beam, and the side of the first clamping plate is provided with a first limiting groove fitted to the column; the first clamping plate is sleeved on the longitudinal beam and fitted to the column; The first clamping plate is also provided with a first through hole adapted to the first bolt. The first bolt passes through the first through holes on the two sides of the first clamping plate and is connected to the first locking nut, so that the first clamping plate can be tightly clamped on the longitudinal beam and the column to maintain the position of the longitudinal beam relative to the column.

3. The water mist plant cultivation support structure according to claim 1, characterized in that: The column is connected to the cross beam through a second connecting member; the second connecting member includes a U-shaped second clamping plate, the top of the second clamping plate is formed as a second positioning groove adapted to the column, and the side of the second clamping plate is provided with a second limiting groove fitted to the cross beam; the second clamping plate is sleeved on the column and fits the cross beam; The second clamping plate is also provided with a second through hole adapted to the second bolt. The second bolt passes through the second through holes on the two sides of the second clamping plate and is connected to the second locking nut, so that the second clamping plate can be tightly clamped on the column and the beam to maintain the position of the column relative to the beam.

4. The water mist plant cultivation support structure according to claim 3, characterized in that: The base is in the shape of a disc.

5. The water mist plant cultivation support structure according to claim 1, characterized in that: The stud is threadedly connected to the base.

6. The water mist plant cultivation support structure according to claim 1, characterized in that: The longitudinal beam comprises at least two sections of sub-beams, and adjacent sub-beams are plugged into each other.