Hydroponic cultivation facility
By introducing light and growth-inducing components into hydroponic cultivation facilities, the problem of existing facilities being unable to grow fruit and vegetable plants has been solved, achieving growth support and improved ventilation for a variety of plants.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WEIHAI HUALING OPTO ELECTRONICS CO LTD
- Filing Date
- 2025-06-11
- Publication Date
- 2026-07-24
AI Technical Summary
Existing hydroponic cultivation facilities cannot effectively grow fruit and vegetable plants, especially vine plants such as netted melons.
A hydroponic cultivation facility was designed, comprising a box, planting components, a lighting component, and a growth-inducing component. The lighting component provides light support, while the growth-inducing component guides the plants to climb, prevents tangling, improves ventilation, and adapts to the growth needs of different plants.
It enables the cultivation of both fruit and leafy vegetables, improving plant growth and ventilation, and adapting to the planting needs of different plants.
Smart Images

Figure CN224539044U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of soilless cultivation technology, and more specifically, to a hydroponic cultivation facility. Background Technology
[0002] Home hydroponic cultivation facilities are for growing plants in water without soil or substrate. Most hydroponic cultivation facilities on the market are mainly for growing leafy vegetables (lettuce, rapeseed, chives, etc.) and cannot grow fruit and vegetable plants (such as netted melons, tomatoes, cucumbers, etc.) with vines, especially netted melons, which cannot be grown. Utility Model Content
[0003] The main purpose of this utility model is to provide a hydroponic cultivation facility to solve the problem that existing hydroponic cultivation facilities cannot easily grow fruit and vegetable plants.
[0004] To achieve the above objectives, according to one aspect of the present invention, a hydroponic cultivation facility is provided, comprising a box body, the interior of which has a containment space for containing nutrient solution, and a planting opening communicating with the containment space at the top of the box body; a planting component laid on the planting opening for planting plants; a light source component and a growth-inducing component, which are selectively disposed on the box body or the planting component, with at least a portion of the structure of the light source component and the growth-inducing component located above the planting component, the growth-inducing component for plant climbing, and the light source component for irradiating the planting component.
[0005] Furthermore, the side wall of the enclosure has a connecting structure, and at least a portion of the illumination component and / or the induced growth component is detachably connected to the connecting structure.
[0006] Furthermore, the connecting structure is a connecting rib protruding from the inner side wall of the box, and the connecting rib extends along the height direction of the box. The connecting rib provides an installation channel that extends through the top surface of the connecting rib along its extension direction. At least a portion of the light-emitting component and / or the growth-inducing component is inserted into the installation channel for positioning.
[0007] Furthermore, damping ribs are provided on the inner wall of the installation channel; and / or the cross-sectional area of the installation channel gradually decreases along the direction near the top of the housing.
[0008] Furthermore, there are at least two connecting structures, disposed on a set of opposing sidewalls of the housing; and / or the planting assembly covers the planting port, and the planting assembly has a clearance opening for avoiding the connecting structures.
[0009] Furthermore, the lighting assembly includes a light source bracket, the connecting end of which is connected to the box or planting assembly; and a light source structure, which is mounted on the light source bracket and located above the planting assembly, and is used to illuminate the planting assembly.
[0010] Furthermore, the growth-inducing component includes an inducing support, the connecting end of which is connected to the box or planting component; and an inducing rod, which is placed upright on the planting component.
[0011] Furthermore, the guide support includes uprights, the lower ends of which are connected to the box body, and two uprights are arranged at intervals; and a crossbeam, the two ends of which are connected to the top of the uprights, and the top of the guide rod is connected to the crossbeam.
[0012] Furthermore, the growth-inducing assembly also includes a connecting frame, which is disposed on a crossbeam, and the inducing rod is connected to the crossbeam through the connecting frame, wherein the connecting frame is slidably connected to the crossbeam; and / or there are multiple connecting frames and inducing rods, with multiple connecting frames spaced apart along the length direction of the crossbeam.
[0013] Furthermore, the planting assembly is provided with a positioning part for limiting the end of the guide rod; and / or the height of the guide rod and the guide support is adjustable.
[0014] Furthermore, the outer side surface of the box is recessed inward to form a receiving recess. The number of receiving recesses is one or more. When there are multiple receiving recesses, the multiple receiving recesses are spaced apart. The hydroponic cultivation facility also includes: a storage box, which is removably installed in the receiving recess and is detachably connected to the box; and / or an oxygenation component, which is installed in the receiving recess.
[0015] By applying the technical solution of this utility model, the following technical effects are achieved:
[0016] During use, nutrient solution is added to the container, and plants are planted on the planting components. The nutrient solution provides the environment necessary for plant growth. Auxiliary growth components are also provided on the container, including lighting and growth-inducing components. When planting fruit and vegetables, the growth-inducing components guide the plant's stem growth, while also fixing and guiding the stems to prevent them from tangling, overly dense foliage, and poor ventilation. When planting low-growing plants, typically leafy vegetables, since they do not need to climb, growth-inducing components are not necessary. Furthermore, the leaves of low-growing plants are relatively dense; therefore, lighting components are used to enhance light intensity, thereby improving the growth of these plants. Both fruit and leafy vegetables can be planted. Attached Figure Description
[0017] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:
[0018] Figure 1 This application shows a schematic diagram of the structure of the illumination component.
[0019] Figure 2 This invention provides a schematic diagram of the structure of the induced growth component.
[0020] Figure 3 A schematic diagram of the internal structure of the housing in this application is shown;
[0021] Figure 4 A schematic diagram of the structure of the housing in this application is shown;
[0022] Figure 5 A schematic diagram of the structure of the oxygen filling component and storage box of this application is shown;
[0023] Figure 6 A schematic diagram of the planting component of this application is shown.
[0024] The above figures include the following reference numerals:
[0025] 10. Box body; 11. Connecting structure; 12. Clearance opening; 13. Receiving recess; 14. Storage box; 20. Planting component; 21. Positioning part; 30. Lighting component; 31. Light source bracket; 32. Light source structure; 40. Growth induction component; 41. Induction bracket; 42. Induction rod; 43. Upright pole; 44. Crossbeam; 45. Connecting frame; 50. Oxygenation component; 51. Receiving box; 52. Air pump; 53. Air outlet; 54. Air pipe; 60. Walking wheel; 61. Scale marking; 62. Planting hole; 63. Planting cover; 64. Liquid inlet; 65. Support beam. Detailed Implementation
[0026] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0027] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0028] In this utility model, unless otherwise stated, directional terms such as "upper," "lower," "top," and "bottom" are generally used in relation to the direction shown in the accompanying drawings, or in relation to the vertical, perpendicular, or gravitational direction of the component itself; similarly, for ease of understanding and description, "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.
[0029] See Figures 1 to 6 A hydroponic cultivation facility includes a box 10, a planting component 20, a light component 30, and a growth-inducing component 40. The box 10 has an internal storage space for holding nutrient solution, and a planting opening communicating with the storage space is provided at the top of the box 10. The planting component 20 is laid on the planting opening and is used to plant plants. The light component 30 and the growth-inducing component 40 can be selectively arranged on the box 10 or the planting component 20. At least a portion of the structure of the light component 30 and the growth-inducing component 40 is located above the planting component 20. The growth-inducing component 40 is used for plant climbing, and the light component 30 is used to irradiate the planting component 20.
[0030] During use, nutrient solution is added to the container 10, and plants are planted on the planting component 20. The nutrient solution provides the environment necessary for plant growth. Auxiliary growth components are also installed on the container 10, including a light component 30 and a growth-inducing component 40. When planting fruits and vegetables, the growth-inducing component guides the plant's stem growth direction, while also fixing and guiding the stems to prevent them from tangling, reducing leaf density, and improving ventilation. When planting low-growing plants, typically leafy vegetables, the growth-inducing component 40 is unnecessary since they do not require climbing. Furthermore, the leaves of low-growing plants are relatively dense; therefore, the light component 30 is used to supplement light intensity, thereby improving the growth effect of low-growing plants. Both fruit and leafy vegetables can be planted.
[0031] The types of fruits and vegetables grown include cucumbers, tomatoes, cantaloupes, and watermelons; the low-growing vegetables include lettuce, rapeseed, coriander, celery, and spinach. The hydroponic cultivation system allows plants to grow in an environment that is suited to the natural temperature of the surrounding environment. It can be grown both indoors and outdoors without requiring any changes to the external temperature; instead, it thrives in temperatures that are appropriate for the natural environment.
[0032] In this application, the side wall of the housing 10 has a connection structure 11, and at least a portion of the illumination component 30 and / or the induced growth component 40 is detachably connected to the connection structure 11.
[0033] Specifically, during use, depending on the type of plant being grown, either the growth-inducing component 40 or the light-emitting component 30 is selected. Fruit and vegetable plants use the growth-inducing component 40, while leafy vegetables use the light-emitting component 30. To improve the flexibility of the hydroponic system and allow for the selection of either fruit or leafy vegetables, the light-emitting component 30 and the growth-inducing component 40 are detachably connected to the housing 10, facilitating the selection of appropriate auxiliary components based on the plant species. Since the growth-inducing component 40 and the light-emitting component 30 mostly need to be positioned above the plant to function, their bottoms are detachably connected to the housing 10. To facilitate this detachable connection, the growth-inducing component 40 or the light-emitting component 30 can be connected to the housing 10 via plug-in, bolts, or threaded connections.
[0034] In this application, the connecting structure 11 is a connecting rib protruding from the inner side wall of the housing 10, and the connecting rib extends along the height direction of the housing 10. The connecting rib provides an installation channel that extends through the top surface of the connecting rib along its extension direction. At least a portion of the light-emitting component 30 and / or the induced growth component 40 is inserted into the installation channel for positioning.
[0035] Specifically, in use, the growth induction component 40 and the illumination component 30 are inserted into the installation channel, facilitating their installation. The plug-in connection also facilitates the disassembly of the growth induction component 40 and the illumination component 30. Connecting ribs are provided on the inner wall of the housing 10, which can be installed during the casting process of the housing 10, facilitating the installation of the connection structure 11. The plug-in connection method facilitates the installation and disassembly of the growth induction component 40 and the illumination component 30.
[0036] In this application, damping ribs are provided on the inner wall of the installation channel, and the cross-sectional area of the installation channel gradually decreases along the direction near the top of the box 10.
[0037] Specifically, the damping ribs can reduce the cross-sectional area of the installation channel. When the growth-inducing component 40 and the illumination component 30 are inserted into the installation channel, they can increase the tightness of the contact between the growth-inducing component 40 and the side wall of the installation channel, thereby increasing the stability of the growth-inducing component 40 and the illumination component 30 when inserted into the installation channel.
[0038] The cross-sectional area of the mounting channel gradually decreases towards the top of the housing 10. The connecting ribs are designed in a trapezoidal shape to increase their structural stability. The mounting channel is located within the connecting ribs; its shape matches the connecting ribs to maintain consistent wall thickness and facilitate rib production. Furthermore, the gradual decrease in cross-sectional area towards the top of the housing 10 allows for easy insertion of the growth component 40 and the illumination component 30 into the mounting channel.
[0039] In this application, there are at least two connection structures 11, which are disposed on a set of opposite side walls of the housing 10.
[0040] By setting multiple connection structures 11, the stability of the installation of the growth-inducing component 40 and the illumination component 30 can be increased. Placing the connection structures 11 on a set of opposing side walls of the housing 10 can balance the forces on the connection structures 11 on both sides of the housing 10, thereby increasing the service life of the connection structures 11.
[0041] In this application, the planting component 20 covers the planting port and has a clearance opening 12 for avoiding the connection structure 11.
[0042] During use, plants are planted on the planting component 20. To increase the number of plants, the planting component 20 should cover the planting opening as much as possible. However, to facilitate the installation of the growth-inducing component 40 and the lighting component 30, a clearance opening 12 is provided on the planting component 20. The clearance opening 12 allows partial passage of the growth-inducing component 40 and the lighting component 30 without affecting the installation between the box 10 and the growth-inducing component 40 and the lighting component 30. Alternatively, the growth-inducing component 40 and the lighting component 30 can be directly inserted into the clearance opening 12 and connected to the planting component 20.
[0043] In this application, the lighting component 30 includes a light source support 31 and a light source structure 32. The connecting end of the light source support 31 is connected to the housing 10 or the planting component 20. The light source structure 32 is disposed on the light source support 31 and is located above the planting component 20. The light source structure 32 is used to illuminate the planting component 20.
[0044] Specifically, the light source support 31 is generally a rod-shaped structure that can be inserted into the box 10 or the connecting component to serve as a support and frame. The light source structure 32 is set on the light source support 31 and is supported by the light source support 31. The preferred light source structure 32 is a fluorescent lamp, which illuminates the plants when supplementary light is needed.
[0045] In one embodiment, the inner wall of the housing 10 is provided with connecting ribs, the interior of the connecting ribs is provided with an installation channel, and the planting component 20 is provided with an avoidance opening 12. The light source bracket 31 is inserted into the installation channel through the avoidance opening 12 to realize the installation of the smooth bracket. Then, the fluorescent lamp set on the light source structure 32 is turned on or off according to the actual use needs.
[0046] Specifically, the growth-inducing component 40 includes an inducing support 41 and an inducing rod 42. The connecting end of the inducing support 41 is connected to the box 10 or the planting component 20, and the inducing rod 42 is placed upright on the planting component 20.
[0047] The guide support 41 is generally a rod-shaped structure that can be inserted into the box 10 or the connecting component. It not only provides support but also allows the plant to climb. To further meet the height requirements for plant climbing, guide rods 42 are installed on the guide support 41. These guide rods 42 can be placed upright on the planting component 20. During plant growth, they can climb onto the guide rods 42, thus encouraging stem growth. Simultaneously, they help to stabilize and guide the plant's stems, preventing them from tangling, reducing foliage density, and improving ventilation.
[0048] In this application, the traction bracket 41 includes uprights 43 and crossbeams 44. The lower end of the uprights 43 is connected to the housing 10. There are two uprights 43 and they are spaced apart. The two ends of the crossbeams 44 are connected to the top of the uprights 43, and the top of the traction rod 42 is connected to the crossbeams 44.
[0049] Specifically, the uprights 43 primarily serve a supporting and connecting function, connecting the growth-inducing component 40 to the housing 10. The crossbeam 44 serves a connecting and stabilizing function, connecting the two uprights 43 to increase their stability. Simultaneously, the crossbeam 44 provides sufficient installation space for the installation of the inducing rods 42.
[0050] In one embodiment, the light source support 31 of the lighting component 30 and the induction support 41 of the growth-inducing component 40 are the same. An induction rod 42 or a light source structure 32 is installed on the induction support 41 according to actual needs. Furthermore, the heights of the light source support 31 and the induction support 41 are adjustable via telescopic rods. When using the light source structure 32, its height is minimized; when using the induction rod 42, its height is maximized to meet the growth needs of different plants.
[0051] In this application, the growth-inducing assembly 40 also includes a connecting frame 45, which is disposed on the crossbeam 44. The inducing rod 42 is connected to the crossbeam 44 through the connecting frame 45. The connecting frame 45 is slidably connected to the crossbeam 44. There are multiple connecting frames 45 and inducing rods 42, and the multiple connecting frames 45 are spaced apart along the length direction of the crossbeam 44.
[0052] Specifically, in actual plant growth, the position and number of guide rods 42 vary depending on the planting density and growth vigor of the plants. The guide rods 42 are connected via a connecting frame 45, allowing for the installation of different numbers of guide rods 42 according to actual needs. Simultaneously, the connecting frame 45 is slidably connected to the crossbeam 44, enabling the adjustment of the guide rods 42's position according to the plant's growth vigor.
[0053] In this application, the planting assembly 20 is provided with a positioning part 21, which is used to limit the end of the guide rod 42. One end of the guide rod 42 is connected to the crossbeam 44, and the other end is located above the planting assembly 20. Since only one end is connected, the other end is in a swaying state, resulting in poor stability. By providing the positioning part 21 on the planting assembly 20, the end of the guide rod 42 near the planting assembly 20 is fixed, thereby increasing the stability of the guide rod 42. The positioning part 21 is a groove or a positioning block that cooperates with the guide rod 42. In the preferred embodiment, the positioning part 21 is a groove. By inserting the guide rod 42 into the groove, the guide rod 42 is positioned and limited, thus keeping the guide rod 42 stable.
[0054] Since different plants grow to different heights, the heights of the guiding rod 42 and the guiding support 41 are adjustable to suit the actual growth needs of the plants. In one embodiment, the guiding rod 42 and the guiding support 41 are telescopic rods to facilitate adjusting their heights.
[0055] In this application, the outer side surface of the box 10 is recessed inward to form a receiving recess 13. The number of receiving recesses 13 is one or more. When there are multiple receiving recesses 13, the multiple receiving recesses 13 are spaced apart. The hydroponic cultivation facility also includes a storage box 14 and an oxygenation component 50. The storage box 14 is removably disposed in the receiving recess 13 and is detachably connected to the box 10. The oxygenation component 50 is disposed in the receiving recess 13.
[0056] Specifically, the storage box 14 can hold plant seeds, various nutrient solutions, planting tools, or other miscellaneous items. The storage box 14 is located in the receiving recess 13 and is integrated with the box body 10. When the box body 10 is moved or transported, the storage box 14 will move along with the box body 10, which facilitates the placement of miscellaneous items.
[0057] An oxygenation component 50 is installed on the other side of the box 10, which can provide enough oxygen to the nutrient solution for the plant roots to breathe and avoid root rot.
[0058] In this application, the oxygenation assembly 50 includes a storage box 51, an air pump 52, an air outlet 53, and an air pipe 54. The storage box 51 is disposed in the storage space, the air pump 52 is disposed in the storage box 51, and the air outlet 53 is disposed in the storage space. The air pump 52 is connected to the air outlet 53 and is used to discharge the gas supplied by the air pump 52. The air outlet 53 is connected to the air pump 52 through the air pipe 54.
[0059] An oxygenation channel is provided on the box 10, and the storage space is connected to the containment space through the oxygenation channel; at least part of the air pipe 54 passes through the oxygenation channel.
[0060] An air pump 52 is placed inside the container 51. An air outlet 53 is connected to the air pump 52 via an air pipe 54. The air pumped by the air pump 52 is discharged through the air outlet 53, which is an air stone to increase air bubbles and thus increase the contact area between the plant roots and the air. An oxygenation channel allows the air pipe 54 to pass through, facilitating its entry into the container 10. The height of the oxygenation channel is higher than the nutrient solution level to prevent the nutrient solution from entering the container 51.
[0061] In one embodiment, the tank 10 is provided with a high water level indicator scale, which is used to prevent overflow when adding nutrient solution.
[0062] The planting component 20 has several planting holes 62 through which plants grow on the planting component 20. The planting component 20 also has a planting cover 63 to cover unused planting holes, reducing nutrient solution evaporation. A support beam 65 is provided at the top of the housing 10 to support the planting component 20.
[0063] The planting component 20 is also provided with a liquid inlet 64, through which nutrient solution can be easily added into the box 10.
[0064] The box 10 is equipped with wheels 60 to facilitate its movement.
[0065] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:
[0066] 1. During use, nutrient solution is added to the container 10, and plants are planted on the planting components 20. The nutrient solution provides the environment necessary for plant growth. Auxiliary growth components are also installed on the container 10, including a light component 30 and a growth-inducing component 40. When planting fruits and vegetables, the growth-inducing component guides the plant's stem growth direction, while also fixing and guiding the stems to prevent them from tangling, reducing leaf density, and improving ventilation. When planting low-growing plants, typically leafy vegetables, the growth-inducing component 40 is unnecessary since they do not require climbing. Furthermore, the leaves of low-growing plants are relatively dense; therefore, the light component 30 is used to supplement light intensity, thereby improving the growth effect of low-growing plants. Both fruit and leafy vegetables can be planted.
[0067] 2. In use, the growth induction component 40 and the illumination component 30 are easily installed by inserting them into the installation channel. The plug-in connection also facilitates the disassembly of the growth induction component 40 and the illumination component 30. Connecting ribs are provided on the inner wall of the housing 10, which can be installed during the casting process of the housing 10 to facilitate the installation of the connection structure 11. The plug-in connection method facilitates the installation and disassembly of the growth induction component 40 and the illumination component 30.
[0068] Obviously, the embodiments described above are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of this utility model.
[0069] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0070] It should be noted that the terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in sequences other than those illustrated or described herein.
[0071] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A hydroponic cultivation facility, characterized in that, include: The box (10) has an internal storage space for holding culture medium, and the top of the box (10) has a planting port that communicates with the storage space. Planting component (20), which is laid on the planting opening and is used to plant plants; A light-emitting component (30) and a growth-inducing component (40) are optionally disposed on the box (10) or the planting component (20). At least a portion of the structure of the light-emitting component (30) and the growth-inducing component (40) is located above the planting component (20). The growth-inducing component (40) is used for plant climbing, and the light-emitting component (30) is used to illuminate the planting component (20).
2. The hydroponic cultivation facility according to claim 1, characterized in that, The box (10) has a connecting structure (11) on its side wall, and at least a portion of the light-emitting component (30) and / or the induced growth component (40) is detachably connected to the connecting structure (11).
3. The hydroponic cultivation facility according to claim 2, characterized in that, The connecting structure (11) is a connecting rib protruding from the inner side wall of the box (10), and the connecting rib extends along the height direction of the box (10). The connecting rib provides an installation channel that extends through the top surface of the connecting rib along its extension direction. At least a portion of the light-emitting component (30) and / or the induced growth component (40) is inserted into the installation channel for positioning.
4. The hydroponic cultivation facility according to claim 3, characterized in that, The inner wall of the installation channel is provided with damping ribs; and / or The cross-sectional area of the installation channel gradually decreases along the direction close to the top of the housing (10).
5. The hydroponic cultivation facility according to claim 2, characterized in that, The connecting structures (11) are at least two, disposed on a set of opposite side walls of the housing (10); and / or The planting component (20) covers the planting port, and the planting component (20) has a clearance opening (12) for avoiding the connection structure (11).
6. The hydroponic cultivation facility according to claim 1, characterized in that, The illumination component (30) includes: A light source bracket (31) is provided, the connecting end of which is connected to the housing (10) or the planting assembly (20). A light source structure (32) is disposed on the light source bracket (31) and located above the planting component (20). The light source structure (32) is used to illuminate the planting component (20).
7. The hydroponic cultivation facility according to claim 1, characterized in that, The induced growth component (40) includes: The guiding support (41) is connected at its connecting end to the box (10) or the planting component (20); A guide rod (42) is placed upright on the planting assembly (20).
8. The hydroponic cultivation facility according to claim 7, characterized in that, The traction stent (41) includes: Upright pole (43), the lower end of which is connected to the box body (10), and there are two upright poles (43) spaced apart; A crossbeam (44) is provided, the two ends of which are connected to the top of the upright (43), and the top of the guide rod (42) is connected to the crossbeam (44).
9. The hydroponic cultivation facility according to claim 8, characterized in that, The growth-inducing assembly (40) further includes a connecting frame (45) disposed on the crossbeam (44), and the inducing rod (42) is connected to the crossbeam (44) via the connecting frame (45). The connecting frame (45) is slidably connected to the crossbeam (44); and / or The number of the connecting frame (45) and the guiding rod (42) is multiple, and the multiple connecting frames (45) are spaced apart along the length direction of the crossbeam (44).
10. The hydroponic cultivation facility according to claim 7, characterized in that, The planting assembly (20) is provided with a positioning part (21), which is used to limit the end of the guide rod (42); and / or The heights of the lure rod (42) and the lure support (41) are adjustable.
11. The hydroponic cultivation facility according to any one of claims 1 to 10, characterized in that, The outer side surface of the box (10) is recessed inward to form a receiving recess (13). The number of receiving recesses (13) is one or more. When there are multiple receiving recesses (13), the multiple receiving recesses (13) are spaced apart. The hydroponic cultivation facility also includes: Storage box (14), said storage box (14) being removably disposed within said receiving recess (13), said storage box (14) being detachably connected to said housing (10); and / or An oxygenation assembly (50) is disposed within the receiving recess (13).