Tea seedling cultivation device and environment simulation structure

By designing a rotating component and a power base, the problem of uneven spraying by the nozzles in the tea seedling cultivation device was solved, achieving uniform irrigation of the tea seedlings and improving their survival rate.

CN223899864UActive Publication Date: 2026-02-13GUANGXI POLYTECHNIC
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Patent Information

Application Number
CN202520537010.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-02-13
Estimated Expiration
2035-03-25

AI Technical Summary

Technical Problem

In existing tea seedling cultivation devices, the fixed nozzles prevent the uniform spraying and irrigation of all tea seedlings, resulting in insufficient water absorption by some individual seedlings.

Method used

A rotating component was designed, including a rotating ring and an annular base. The bottom of the rotating ring is provided with a sliding groove, and the top of the annular base is provided with equidistant ball grooves in which rolling balls are embedded. The rolling balls reduce friction, so that the rotating ring drives the cultivation component to rotate evenly. Combined with a power base and motor drive, it ensures that each group of cultivation containers is evenly irrigated.

Benefits of technology

This ensured uniform irrigation of tea seedlings, avoided the problem of insufficient water absorption by individual tea seedlings, and improved the survival rate of tea seedlings.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a tea sapling cultivation device and environment simulation structure, including: a rotating assembly, the rotating assembly is placed above an annular base at the lower part in an environment simulation box, the rotating assembly includes a plurality of groups of cultivation assemblies installed at the top of a rotating ring, and a sliding groove is arranged in an annular area at the bottom of the rotating ring far away from the circle center; compared with the prior art, the cultivation device has the advantages that the rotating assembly and the annular base are arranged, the rotating ring is driven by the first rotating shaft to rotate at a constant speed above the annular base, and the cultivation container can rotate at a constant speed; the cultivation container rotates above the power base and is matched with the multiple sets of cultivation assemblies to rotate around the vertical line where the circle center of a spray head is located, and therefore the irrigation uniformity of the tea seedlings is greatly improved; the situation that individual tea tree seedlings are unevenly irrigated is prevented.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the technical field of cultivation device, especially relates to a tea seedling cultivation device and environment simulation structure. BACKGROUND

[0002] Tea seedling cultivation device and environment simulation structure refers to a kind of facilities specially used for tea seedling growth, which can simulate various conditions suitable for tea seedling growth in natural environment. It aims to provide a stable and controllable growth environment for tea seedling to promote healthy and rapid growth and improve survival rate. In simulated environment, irrigation simulation is an important environmental simulation project, which aims to provide water for tea seedling growth. The conventional method is to set up a spray head to irrigate the tea seedling inside the simulation box with water. However, when using the spray head to spray the tea seedling, the spray head may not be able to evenly spray all the tea seedlings due to its fixed structure, resulting in insufficient water absorption of individual tea seedlings. Therefore, a new structure is proposed to solve the above problems. UTILITY MODEL CONTENT

[0003] In view of the deficiencies of the prior art, the utility model aims to provide a tea seedling cultivation device and environment simulation structure to solve the problems raised in the background art.

[0004] The utility model realizes the following technical scheme: a tea seedling cultivation device and environment simulation structure, comprising: a rotating assembly placed above a ring-shaped base below the inside of an environment simulation box, the rotating assembly comprising a plurality of cultivation assemblies installed on the top of a rotating ring;

[0005] A sliding groove is formed in the annular region of the rotating ring bottom away from the center.

[0006] As a preferred embodiment, an observation window is formed in the left side of the environment simulation box, a light simulation lamp is installed inside the environment simulation box, and an irrigation spray head is installed on the top inside the environment simulation box.

[0007] A cultivation device control box is provided below the environment simulation box, a pressurized water tank and a main motor are provided inside the cultivation device control box, the pressurized water tank is connected to the irrigation spray head through a water pipe, a shaft one is connected to the top of the main motor through a coupling one, the shaft one penetrates the bottom of the environment simulation box upward and is fixed to the center of the bottom of the rotating ring, a sealing ring is provided outside the penetration between the shaft one and the bottom of the environment simulation box, a water storage tank is provided inside the cultivation device control box, a water collecting tank is formed in the lower side of the inside of the environment simulation box, and the bottom of the water collecting tank is connected to the water storage tank inside the cultivation device control box through a water outlet pipe to collect excess water and prevent water from overflowing.

[0008] As a preferred implementation, the radius length of the annular base matches the radius length of the rotating ring, and a plurality of sets of ball grooves are equidistantly formed on the top of the annular base, and each set of the ball grooves is internally embedded with a plurality of balls.

[0009] As a preferred implementation, the radius length of the annular region formed by the plurality of sets of balls matches the radius length of the sliding groove, and the diameter length of the balls matches the width of the sliding groove, so that the plurality of sets of balls are rolled along the sliding groove to greatly reduce the friction between the bottom of the rotating ring and the top of the annular base, and the rotation of the rotating ring is more labor-saving and smooth.

[0010] As a preferred implementation, the power base is arranged below the cultivation container, and a waterproof ring is arranged below the outer side of the cultivation container, and the waterproof ring is a horn-shaped structure with gradually increasing diameter from top to bottom.

[0011] As a preferred implementation, a sub-motor is vertically arranged in the power base, and the output end of the top of the sub-motor is connected with a second rotating shaft above the sub-motor through a second shaft coupling, and the top of the second rotating shaft is fixed with the bottom of the cultivation container.

[0012] As a preferred implementation, the radius length of the inner side of the bottom of the waterproof ring is greater than the radius length of the top of the power base, and the horizontal height of the bottom of the waterproof ring is less than the horizontal height of the top of the power base, so that the waterproof ring can prevent water from entering the power base through the connection between the bottom of the cultivation container and the top of the power base when the nozzle sprays.

[0013] As a preferred implementation, the centers of the rotating ring, the annular base and the nozzle are on the same vertical line, and the radius length of the spraying range of the nozzle matches the radius length of the rotating ring, so that the plurality of sets of cultivation assemblies are all within the spraying range of the nozzle.

[0014] After the above technical scheme is adopted, the beneficial effects of the present application are as follows: 1. By arranging the environment simulation box, the rotating assembly and the annular base, the nozzle is arranged on the inner side of the top of the environment simulation box to simulate the irrigation water source, the rotating assembly includes a rotating ring for driving the rotation of the cultivation assembly, the bottom of the rotating ring is provided with a sliding groove, and the top of the annular base is equidistantly provided with a plurality of sets of ball grooves, and each set of the ball grooves is internally embedded with a plurality of balls, when the rotating ring is rotated under the driving of the first rotating shaft, the inner side of the sliding groove of the bottom of the rotating ring is in contact with the top of the plurality of sets of balls of the top of the annular base, and the plurality of sets of balls are rolled in the respective ball grooves, so that the rotating ring rotates at a constant speed above the annular base, and then the plurality of sets of cultivation assemblies on the top of the rotating ring rotate around the vertical line where the center of the nozzle is located, and then the tea seedlings planted in the plurality of sets of cultivation assemblies are uniformly sprayed and irrigated.

[0015] 2、By setting up the cultivation assembly, the cultivation assembly includes a cultivation container and a power base, the motor inside the power base is fixed with the cultivation container bottom center through the rotating shaft two, the tea seedlings are planted in the cultivation container, therefore, the cultivation container rotates above the power base under the driving of the rotating shaft two, and a plurality of groups of cultivation assemblies rotate around the vertical line where the nozzle center is, so that the irrigation uniformity of the tea seedlings is greatly improved, and the uneven irrigation of individual tea seedlings is prevented. BRIEF DESCRIPTION OF DRAWINGS

[0016] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed to be used in the following embodiment or prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and for those skilled in the art, other drawings can be obtained without creative labor under the premise of the drawings.

[0017] Figure 1 It is a schematic diagram of the tea seedling cultivation device and environment simulation structure of the present application.

[0018] Figure 2 It is a structural schematic diagram of the rotating assembly and the annular base in the tea seedling cultivation device and environment simulation structure of the present application.

[0019] Figure 3 It is a structural schematic diagram of the sliding groove in the tea seedling cultivation device and environment simulation structure of the present application.

[0020] Figure 4 It is a structural schematic diagram of the cultivation assembly in the tea seedling cultivation device and environment simulation structure of the present application.

[0021] In the figure, 100-cultivation device control box, 110-environment simulation box, 120-annular base, 121-rolling ball;

[0022] 200-rotating assembly, 201-sliding groove, 210-rotating ring, 220-cultivation assembly, 221-cultivation container, 222-waterproof ring, 223-power base. DETAILED DESCRIPTION

[0023] The technical scheme in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only some embodiments of the present application, not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.

[0024] Please refer to Figures 1 to 4The application discloses a tea seedling cultivation device and environment simulation structure.

[0025] The rotating ring 210 is internally provided with a sliding groove 201 in the annular area away from the center of the rotating ring 210.

[0026] The environment simulation box 110 is internally provided with a light simulation lamp and an irrigation nozzle.

[0027] The cultivation device control box 100 is internally provided with a pressurized water tank and a main motor.

[0028] The radius of the annular base 120 matches the radius of the rotating ring 210.

[0029] The radius of the annular area formed by the plurality of rolling balls 121 matches the radius of the sliding groove 201.

[0030] The power base 223 is internally vertically provided with a sub-motor.

[0031] The output end of the sub-motor is connected with a rotating shaft two through a coupling two.

[0032] The radius length of the bottom inner side of the waterproof ring 222 is greater than the radius length of the top of the power base 223, the horizontal height of the bottom of the waterproof ring 222 is less than the horizontal height of the top of the power base 223, and the waterproof ring 222 can prevent moisture from entering the inside of the power base 223 through the joint between the bottom of the cultivation container 221 and the top of the power base 223 when the shower head sprays.

[0033] The centers of the rotating ring 210, the annular base 120, and the shower head are on the same vertical line, the radius length of the spraying range of the shower head matches the radius length of the rotating ring 210, and it is ensured that the plurality of cultivation assemblies 220 are all within the spraying range of the shower head.

[0034] Embodiment 1: please refer to Figures 1 to 4 In actual use, the top of the cultivation device control box 100 is provided with an environment simulation box 110, a light simulation lamp is installed on the side wall of the environment simulation box 110 for simulating light, a shower head is installed on the inside upper central part of the environment simulation box 110, the shower head is connected with a pressurized water tank inside the cultivation device control box 100 through a water pipe, water is sprayed into the inside of the environment simulation box 110 through the shower head for simulating irrigation of tea seedlings, a water collecting groove is opened on the inside lower part of the environment simulation box 110, and the bottom of the water collecting groove is connected with a water storage tank inside the cultivation device control box 100 through a water outlet pipe for collecting excess water;

[0035] The inside lower part of the environment simulation box 110 is provided with an annular base 120, a plurality of ball grooves are equidistantly opened on the top of the annular base 120, a ball 121 is embedded and installed in each ball groove, an rotating assembly 200 is arranged above the annular base 120, the rotating assembly 200 includes a rotating ring 210 for driving a plurality of cultivation assemblies 220 to rotate, a sliding groove 201 is opened on the bottom of the rotating ring 210, the centers of the rotating ring 210, the annular base 120, and the shower head are on the same vertical line, and the radius length of the spraying range of the shower head matches the radius length of the rotating ring 210, so that the plurality of cultivation assemblies 220 can be completely covered in the spraying range;

[0036] In actual use, the main motor in the control box 100 drives the rotating ring 210 to rotate at a constant speed above the annular base 120 through the rotating shaft I, at this time, the several groups of balls 121 respectively rub along the inner side of the sliding groove 201 and roll in the respective ball grooves, thus greatly reducing the friction between the bottom of the rotating ring 210 and the top of the annular base 120, making the rotation of the rotating ring 210 more labor-saving and smooth, and a plurality of groups of cultivation assemblies 220 are equidistantly arranged in the annular area away from the center of the top of the rotating ring 210, the cultivation assembly 220 comprises a cultivation container 221 and a power base 223, and tea seedlings are planted in the cultivation container 221, therefore, when the rotating ring 210 rotates at a constant speed, the tea seedlings in the several groups of cultivation containers 221 rotate around the vertical line where the nozzle center is located, thereby greatly improving the uniformity of the spray irrigation.

[0037] Embodiment 2: please refer to Figures 1 to 4 The power base 223 is internally provided with a sub-motor, the top of the sub-motor is connected with the rotating shaft II through the coupling II, and the top of the rotating shaft II is fixed with the bottom center of the cultivation container 221, therefore, when the rotating ring 210 drives the several groups of cultivation assemblies 220 to rotate around the vertical line where the nozzle center is located, the cultivation container 221 above each group of cultivation assemblies 220 rotates under the drive of the power base 223 below, that is, the rotating ring 210 drives the several groups of cultivation assemblies 220 to rotate, and the cultivation container 221 rotates alone, thus significantly improving the irrigation uniformity of the tea seedlings and avoiding the occurrence of uneven irrigation of individual tea seedlings.

[0038] The above only describes the preferred embodiments of the present application and is not intended to limit the present application, any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A tea seedling cultivation device and environmental simulation structure, comprising: The rotating assembly (200) is characterized in that: the rotating assembly (200) is placed above the annular base (120) below the interior of the environmental simulation box (110), and the rotating assembly (200) includes a plurality of cultivation components (220) installed on the top of the rotating ring (210); The rotating ring (210) has a sliding groove (201) inside the annular area at the bottom away from the center, and the cultivation component (220) includes a rotatable cultivation container (221).

2. The tea seedling cultivation device and environmental simulation structure as described in claim 1, characterized in that: An observation window is provided on the left side of the environmental simulation box (110), a light simulation lamp is installed inside the environmental simulation box (110), and an irrigation nozzle is installed on the top inside the environmental simulation box (110). Below the environmental simulation box (110) is a cultivation device control box (100). Inside the cultivation device control box (100) is a pressurized water tank and a main motor. The pressurized water tank is connected to an irrigation nozzle through a water pipe. The top of the main motor is connected to a rotating shaft through a coupling. The top of the rotating shaft extends upward through the bottom of the environmental simulation box (110) and is fixed at the center of the bottom of the rotating ring (210).

3. The tea seedling cultivation device and environmental simulation structure as described in claim 1, characterized in that: The radius of the annular base (120) matches the radius of the rotating ring (210). The top of the annular base (120) is provided with several sets of ball grooves at equal intervals, and each set of ball grooves is inlaid with a ball (121).

4. The tea seedling cultivation device and environmental simulation structure as described in claim 3, characterized in that: The radius of the annular region formed by several groups of the balls (121) matches the radius of the sliding groove (201), and the diameter of the balls (121) matches the width of the sliding groove (201).

5. The tea seedling cultivation device and environmental simulation structure as described in claim 1, characterized in that: The cultivation container (221) is provided with a power base (223) below it, and a waterproof ring (222) is provided on the lower outer side of the cultivation container (221). The waterproof ring (222) is a trumpet-shaped structure with a gradually increasing diameter from top to bottom.

6. The tea seedling cultivation device and environmental simulation structure as described in claim 5, characterized in that: An auxiliary motor is vertically installed inside the power base (223). The output end of the auxiliary motor is connected to the rotating shaft above it through a coupling. The top of the rotating shaft is fixed to the center of the bottom of the cultivation container (221).

7. The tea seedling cultivation device and environmental simulation structure as described in claim 6, characterized in that: The radius of the bottom inner side of the waterproof ring (222) is greater than the radius of the top of the power base (223), and the horizontal height of the bottom of the waterproof ring (222) is less than the horizontal height of the top of the power base (223).

8. The tea seedling cultivation device and environmental simulation structure as described in claim 1, characterized in that: The centers of the rotating ring (210), the annular base (120), and the nozzle are on the same vertical line, and the radius of the spraying range of the nozzle matches the radius of the rotating ring (210).