A cultivation device for perennial grass
By designing a support frame, embedded cultivation components, and water supply components, the problems of mismatched cultivation plate sizes and uneven nutrient solution spraying in perennial forage cultivation devices were solved, thereby improving the efficiency of the forage growth environment and yield.
Patent Information
- Application Number
- CN202521126295.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-04
- Publication Date
- 2026-06-26
- Estimated Expiration
- 2035-06-04
Smart Images

Figure CN224402307U_ABST
Abstract
Description
[Technical Field]
[0001] This utility model relates to the field of cultivation technology, and in particular to a cultivation device for perennial forage grasses. [Background Technology]
[0002] Perennial forage grasses such as alfalfa, ryegrass, and sheepgrass are important supports for the healthy development of animal husbandry, providing high-protein, high-fiber, high-quality forage for dairy cows, beef cattle, sheep, and other livestock.
[0003] However, there is currently a lack of dedicated perennial forage cultivation equipment on the market, leading to the reliance on traditional greenhouses or simple facilities for perennial forage cultivation. These traditional methods have the following limitations: for example, the traditional cultivation boards and cultivation surfaces are difficult to match perfectly in terms of size, resulting in time-consuming and labor-intensive operation; the traditional supplemental lighting has a fixed angle, making it difficult to adjust according to actual needs, thus limiting its effect on promoting forage growth; and in the later stages of cultivation, the extensive root system of forage makes it easy to cause uneven spraying of nutrient solution, affecting forage growth and yield. [Utility Model Content]
[0004] The purpose of this invention is to provide a cultivation device for perennial forage grasses, which solves the problems of mismatch between the size of the cultivation board and the cultivation surface and uneven spraying of nutrient solution in current traditional cultivation devices.
[0005] This utility model is achieved by the following technical solution:
[0006] A cultivation device for perennial forage grasses includes a support frame, on one side of which is a cultivation component for cultivating perennial forage grasses and a water supply component for providing water and nutrients. The cultivation component consists of multiple cultivation plates, and a bidirectional fixing groove for fixing and connecting is provided between every two cultivation plates. The bidirectional fixing groove is provided with a rolling component for sliding the cultivation plates.
[0007] As described above, in the cultivation device for perennial forage grasses, the bidirectional fixing groove is provided with a first groove and a second groove for accommodating the cultivation plate, and the rolling assembly is disposed between the first groove and the second groove.
[0008] As described above, the cultivation device for perennial forage grasses has a plurality of cultivation holes on the cultivation plate for fixing the perennial forage grasses.
[0009] As described above, in the cultivation device for perennial forage grasses, the water supply components are respectively located under each of the cultivation plates.
[0010] As described above, the cultivation device for perennial forage grasses includes a water supply assembly comprising a water supply pipe for providing water and nutrients, and a plurality of misting nozzles connected to the water supply pipe.
[0011] As described above, in the cultivation device for perennial forage grasses, a mesh structure for improving absorption efficiency is provided between the water supply component and the cultivation plate.
[0012] As described above, in the cultivation device for perennial forage grasses, the supporting frame is provided with a third groove for fixing and connecting the cultivation plate.
[0013] As described above, the cultivation device for perennial forage grasses has a lighting component for supplemental lighting on the other side of the support frame. The lighting component consists of multiple supplemental lights, and a universal joint for connecting and adjusting the position is provided between the supplemental lights and the support frame.
[0014] As described above, the cultivation device for perennial forage grasses has a support frame in the shape of either a trapezoid or a triangle.
[0015] Compared with the prior art, the present invention has the following advantages:
[0016] This invention proposes a cultivation device for perennial forage grasses. The device uses a support frame as its structural foundation and embedded cultivation components as carriers for the grass to grow in a specific location. The forage grasses are planted on the surface of the cultivation components. Through the combined action of the cultivation components and the support frame, the grasses can grow in a specific location. A water supply component provides the grasses with sufficient and uniform water and nutrients, and a lighting component adjusts the light angle in a timely manner to provide supplemental light to the grasses on adjacent cultivation devices, ensuring optimal photosynthetic conditions.
[0017] This utility model is a cultivation device for perennial forage grasses. It is easy to use and enables the positioning and growth of perennial forage grasses through a support frame, embedded cultivation components and water supply components. By integrating the cultivation components and water supply components on the support frame, the utilization rate of cultivation space is improved. At the same time, it provides a highly efficient and comprehensive growth environment for perennial forage grasses and solves the problems of mismatch between the size of the cultivation board and the cultivation surface and uneven spraying of nutrient solution in current traditional cultivation devices. [Attached Image Description]
[0018] Figure 1 This is a side view of the present invention;
[0019] Figure 2 for Figure 1 An enlarged view of point A;
[0020] Figure 3 for Figure 1 An enlarged view of point B;
[0021] Figure 4 for Figure 1 An enlarged view of point C;
[0022] Figure 5 This is a schematic diagram illustrating the use of this utility model.
Detailed Implementation Methods
[0023] The following is in conjunction with the appendix Figures 1-4 The present invention will be further described in detail with reference to the embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present invention and are not intended to limit the present invention.
[0024] Figures 1-4 The device shown is a cultivation device for perennial forage grass, including a support frame 1. The support frame 1 has a cultivation component 2 for cultivating perennial forage grass and a water supply component 4 for providing water and nutrients on one side. The cultivation component 2 is composed of multiple cultivation plates 21. A bidirectional fixing groove 22 for fixing and connecting is provided between every two cultivation plates 21. The bidirectional fixing groove 22 is provided with a rolling component 23 for sliding the cultivation plate 21.
[0025] In this implementation, firstly, a support frame serves as the structural foundation of the entire device. A cultivation component is installed on one side of the support frame as a carrier for the positioned growth of forage. A water supply component provides sufficient and uniform water and nutrients to the forage, ensuring its healthy growth. The forage is planted on the surface of the cultivation component, and the cultivation component, together with the support frame, achieves positioned growth of the forage. Secondly, a bidirectional fixing groove provides additional structural support and connects adjacent cultivation boards, allowing multiple cultivation boards to be tightly combined within the support frame to form a whole, ensuring the stability and firmness of the cultivation component within the support frame. A rolling component allows the cultivation boards to slide easily and flexibly laterally on the support frame as needed, providing great flexibility and reducing the operator's workload. The cultivation boards and the bidirectional fixing groove work together to form an embedded cultivation component. The sliding function of the cultivation board, achieved through the combined action of the bidirectional fixing groove and the rolling component, improves operational convenience and optimizes the forage growth environment, providing strong support for improving forage yield and quality.
[0026] Furthermore, the bidirectional fixing groove 22 is provided with a first groove 221 and a second groove 222 for accommodating the cultivation board 21, and the rolling assembly 23 is disposed between the first groove 221 and the second groove 222.
[0027] In this embodiment, by setting a first groove and a second groove on the bidirectional fixing groove, a double fixing effect is provided, ensuring that the two edges of the cultivation board are firmly locked in place, preventing the cultivation board from loosening or detaching during sliding. Simultaneously, the rolling assembly is positioned between the two grooves, its rolling shaft or balls precisely contacting the edges of the cultivation board, providing uniform support and guidance, reducing friction and resistance, and ensuring the stability and precision of the cultivation board during sliding. Furthermore, the compact structural design of the bidirectional fixing groove and the rolling assembly optimizes the structural layout of the cultivation device, achieving the integration of fixing and sliding functions.
[0028] Furthermore, the cultivation board 21 is provided with a plurality of cultivation holes 211 for fixing perennial forage grasses.
[0029] Furthermore, the water supply components 4 are respectively disposed under each of the cultivation plates 21.
[0030] Furthermore, the water supply assembly 4 includes a water supply pipe 41 for providing water and nutrients and a plurality of misting nozzles 42 connected to the water supply pipe 41.
[0031] Specifically, the misting nozzle is connected to the integrated water and fertilizer machine through a pipeline, and the timing and amount of water and nutrient solution spraying are controlled by the control system, so that water and nutrient solution are evenly distributed on the grass roots through atomization.
[0032] Furthermore, a mesh structure 5 for improving absorption efficiency is provided between the water supply component 4 and the cultivation board 21.
[0033] In this implementation, a well-ventilated mesh structure is used to support and guide the grass roots, disperse the impact force from the water supply components, and increase the contact area between the water supply components and the grass roots. This allows water and nutrient solution to be evenly distributed around the grass roots, avoiding excessive wetting or drying in local areas. This ensures that the grass roots can fully and evenly absorb water and nutrients, thus improving absorption efficiency.
[0034] Furthermore, the support frame 1 is provided with a third groove 11 for fixing and connecting the cultivation board 21.
[0035] Furthermore, the other side of the support frame 1 is provided with an illumination component 3 for supplemental lighting. The illumination component 3 is composed of multiple supplemental lights 31 for supplemental lighting. A universal joint 32 for connecting and adjusting the position is provided between the supplemental lights 31 and the support frame 1.
[0036] Specifically, the lighting components, when connected to the control system, can regulate lighting factors such as light angle, light intensity, photoperiod, and light quality according to different crops and different growth stages of the same crop, so that the light environment of the cultivation surface is more conducive to the growth of pasture.
[0037] In this implementation, by installing a lighting component on the other side of the support frame, the lighting angle can be adjusted in a timely manner to provide supplemental lighting for the pasture on adjacent cultivation devices (such as...). Figure 5 As shown in the diagram, this ensures optimal photosynthetic conditions and achieves multifunctional integration of the supporting framework. Secondly, the angle of the supplemental lights is precisely adjusted via universal joints, allowing them to rotate and tilt freely in multiple directions as needed. This ensures uniform light coverage of the entire adjacent cultivation area, providing the most suitable light conditions and avoiding uneven grass growth caused by uneven light. Furthermore, the universal joints facilitate the addition or removal of supplemental lights, enabling the lighting components to adapt to different cultivation needs and environmental conditions. For example, the number of supplemental lights can be increased during specific seasons or growth stages to provide additional light.
[0038] Furthermore, the shape of the supporting frame 1 is either a trapezoid or a triangle.
[0039] In this implementation, the support frame is set as a trapezoidal body, which can accommodate multiple cultivation boards, thereby increasing the cultivation capacity of forage, improving space utilization, increasing forage yield, and its bottom has a large area, providing more stable structural support, effectively distributing the weight of the device and reducing the risk of tipping or sliding.
[0040] This utility model is a cultivation device for perennial forage grasses. It is easy to use and enables the positioning and growth of perennial forage grasses through a support frame, embedded cultivation components and water supply components. By integrating the cultivation components and water supply components on the support frame, the utilization rate of cultivation space is improved. At the same time, it provides a highly efficient and comprehensive growth environment for perennial forage grasses and solves the problems of mismatch between the size of the cultivation board and the cultivation surface and uneven spraying of nutrient solution in current traditional cultivation devices.
[0041] The above description describes the implementation methods in conjunction with specific content, and does not imply that the specific implementation of this utility model is limited to these descriptions. Furthermore, due to differences in industry naming conventions, it is not limited to the above names or the English names. Any methods or structures that are similar to or identical to those of this utility model, or any technical deductions or substitutions made based on the concept of this utility model, should be considered within the scope of protection of this utility model.
Claims
1. A cultivation device for perennial forage grasses, comprising a supporting frame (1), characterized in that: The support frame (1) is provided with a cultivation component (2) for cultivating perennial forage grass and a water supply component (4) for providing water and nutrients on one side. The cultivation component (2) is composed of multiple cultivation plates (21). A bidirectional fixing groove (22) for fixing and connecting is provided between every two cultivation plates (21). The bidirectional fixing groove (22) is provided with a rolling component (23) for sliding the cultivation plate (21).
2. The cultivation device for perennial forage grasses according to claim 1, characterized in that: The bidirectional fixing groove (22) is provided with a first groove (221) and a second groove (222) for accommodating the cultivation board (21), and the rolling component (23) is disposed between the first groove (221) and the second groove (222).
3. The cultivation device for perennial forage grasses according to claim 1, characterized in that: The cultivation board (21) is provided with a plurality of cultivation holes (211) for fixing perennial forage grasses.
4. The cultivation device for perennial forage grasses according to claim 1, characterized in that: The water supply components (4) are respectively located under each of the cultivation plates (21).
5. The cultivation device for perennial forage grasses according to claim 4, characterized in that: The water supply assembly (4) includes a water supply pipe (41) for providing water and nutrients and a plurality of misting nozzles (42) connected to the water supply pipe (41).
6. The cultivation device for perennial forage grasses according to claim 5, characterized in that: A mesh structure (5) for improving absorption efficiency is provided between the water supply component (4) and the cultivation board (21).
7. The cultivation device for perennial forage grasses according to claim 1, characterized in that: The support frame (1) is provided with a third groove (11) for fixing and connecting the cultivation board (21).
8. The cultivation device for perennial forage grasses according to claim 7, characterized in that: The other side of the support frame (1) is provided with an illumination component (3) for supplementary lighting. The illumination component (3) consists of multiple supplementary lights (31) for supplementary lighting. A universal joint (32) for connecting and adjusting the position is provided between the supplementary lights (31) and the support frame (1).
9. The cultivation device for perennial forage grasses according to claim 7, characterized in that: The shape of the supporting frame (1) is either a trapezoid or a triangle.