A cultivation device for high-yield rice planting

By designing a cultivation device for high-yield rice cultivation, using the camera to observe the growth status of rice, the motor drives the plywood to transfer necrotic rice, and ticks the saline-alkali soil through the plate, the problem of difficult to observe and remove rice in the middle is solved, and a more efficient rice cultivation experiment is achieved.

CN119422727BActive Publication Date: 2025-06-13JIANGXI HAISHENGREN GRAIN & OIL CO LTD
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Patent Information

Application Number
CN202411580641.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-07
Publication Date
2025-06-13
Estimated Expiration
2044-11-07

AI Technical Summary

Technical Problem

Since the experimental sites or experimental boxes for rice cultivation have a certain length and width, it is difficult for experimental personnel to observe the growth of rice located in the experimental sites or in the middle of the experimental boxes, and it is difficult to take out the rice located in the experimental sites or in the middle of the experimental boxes for research.

Method used

A cultivation device for high-yield rice cultivation is designed, including a connecting frame, a culture frame, a moving piece, a motor, a ply plate, a camera, a motor, a dial plate, a collection box and an electric push rod. Observe the growth status of rice through the camera, the motor drives the plywood to transfer necrotic rice, and the dial-alkali soil to prevent it from being taken out together.

Benefits of technology

It greatly facilitated the experimenters' observation of the growth status of rice plants, solved the problem of difficulty in taking out rice in the middle, and avoided unnecessary loss of saline-alkali soil, simplified the preparation of subsequent experiments.

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Abstract

The present invention relates to the technical field of rice cultivation, and particularly relates to a cultivation device for high-yield rice planting, including a first connecting frame, a cultivation frame, etc.; a number of cultivation frames are placed on the first connecting frame. The present invention drives a clamping plate through a first motor to transfer dead rice plants, avoiding the problem that it is not easy for experimenters to take out some rice for research due to the certain length and width of the experimental field or experimental box for rice cultivation; by controlling the second motor to drive the dial plate to rotate towards the direction close to the camera, the dial plate is used to stir the saline-alkali soil at the roots of the rice plants clamped by the clamping plate, so that the dial plate scatters the saline-alkali soil at the roots of the rice plants, and the saline-alkali soil falls back into the cultivation frame again, avoiding that when taking out the dead rice plants, a large amount of saline-alkali soil is also taken out, resulting in the need to add saline-alkali soil again when conducting experiments on another batch of rice plants later, which is rather troublesome.
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Description

Technical Field

[0001] The invention relates to the technical field of rice cultivation, and in particular to a cultivation device for high-yield rice planting. Background Art

[0002] In order to make full use of land resources, existing rice breeding laboratories will experimentally breed rice in saline-alkali environments to overcome the existing problems of difficulty in growing rice in saline-alkali land and low yields. When breeding rice experimentally on saline-alkali land, it is inevitable that the rice plants will die. In order to study the causes of rice necrosis and prevent necrotic rice from affecting other normal rice breeding, experimenters usually remove the necrotic rice. However, since rice breeding experiments require sufficient comparative data and control groups, and in order to facilitate experimenters to observe the growth of rice, there is a certain interval between rice during planting. However, since the experimental sites or experimental boxes for rice breeding have a certain length and width, it is difficult for experimenters to observe the growth of rice in the middle of the experimental site or experimental box, and it is not easy to remove the rice in the middle of the experimental site or experimental box. Summary of the invention

[0003] In order to overcome the disadvantages that the experimental field or experimental box for rice cultivation has a certain length and width, which makes it difficult for experimenters to observe the growth of rice in the middle of the experimental field or experimental box, and it is not easy to take out the rice in the middle of the experimental field or experimental box, the present invention provides a cultivation device for high-yield rice planting.

[0004] Technical solution: A high-yield rice cultivation device, comprising a connecting frame and a cultivation frame; a plurality of cultivation frames are placed on the connecting frame; a moving part 1, a moving part 2, a connecting frame 2, a motor 1, a clamp, a camera, a motor 2, a dial plate, a collection box and an electric push rod; a collection box is fixedly connected to the cultivation frame located on the leftmost side; a plurality of moving parts 1 are fixedly connected to the connecting frame 1; all the moving parts 1 are fixedly connected to the moving part 2; the moving part 2 is fixedly connected to the electric push rod; the telescopic part of the electric push rod is fixedly connected to the connecting frame 2, and the bottom of the connecting frame 2 is cross-shaped; the bottom of the connecting frame 2 is connected to the rotating connecting part A plurality of clamping plates for clamping and transferring necrotic rice plants are connected; a plurality of motors 1 are fixedly connected to the bottom of the connecting frame 2, and the output shaft of each motor 1 is fixedly connected to the corresponding clamping plate; a plurality of gaps are opened on each clamping plate, and the gaps on the two clamping plates arranged opposite to each other are staggered; a camera is fixedly connected to the bottom of the connecting frame 2; a motor 2 is fixedly connected to each of the clamping plates on the left and the clamping plate on the right; the rotating part of each motor 2 runs through the entire clamping plate, and the rotating part of each motor 2 is fixedly connected to a plurality of paddles for moving the saline-alkali soil, and each paddle is fitted with the corresponding clamping plate.

[0005] More preferably, a plurality of slots are provided on the connecting frame.

[0006] More preferably, the bottom of each splint is pointed.

[0007] More preferably, it further includes an airbag; the airbag consists of a fixed part and an expansion part; airbags are connected to the splints on the left and right sides respectively, the fixed part of the airbag is connected to the splint, an air inlet pipe is arranged on each expansion part of the airbag, and several straight grooves are arranged on the fixed part of each airbag.

[0008] More preferably, the airbag is made of wear-resistant rubber material.

[0009] More preferably, a tip is arranged on the dial plate.

[0010] More preferably, the collection box and the culture frame are detachably connected.

[0011] More preferably, it further includes a handle one and a handle two; the handle one is fixedly connected to the upper part of the collection box; the handle two is fixedly connected to the left side of the collection box.

[0012] More preferably, it further includes a hollow plate, a water inlet pipe, an L-shaped plate, a connecting pipe one and a connecting pipe two; a hollow plate is connected to each of the splints on the left and right sides, and the airbag is located in the middle of the corresponding hollow plate; a water inlet pipe is fixedly connected and communicated with each hollow plate; several convex parts are arranged on each airbag, several square grooves are arranged on the front side and the rear side of each convex part, and the length of each square groove is the same as the length of the straight groove; an L-shaped plate is fixedly connected to the upper part of each of the splints on the left and right sides, and the telescopic part of each L-shaped plate is fixedly connected to the corresponding hollow plate; several connecting pipes one are fixedly connected to the hollow plate, and all the connecting pipes one are communicated with the internal space of the hollow plate; each connecting pipe one is fixedly connected and communicated with several connecting pipes two, and all the connecting pipes two are communicated with the corresponding square grooves.

[0013] More preferably, it further includes a baffle; a baffle is fixedly connected to each convex part.

[0014] Compared with the prior art, the present invention has the following advantages: The present invention observes the growth state of rice plants in each culture frame through a camera, which greatly facilitates the experimental personnel to observe the growth state of rice plants.

[0015] The present invention drives the splint to transfer the necrotic rice plants through the motor one, avoiding the problem that it is not easy for the experimental personnel to take out some rice for research due to the certain length and width of the experimental land or experimental box for rice cultivation.

[0016] In the present invention, by controlling the second motor to drive the dial plate to rotate towards the camera, the dial plate stirs the saline-alkali soil at the root of the rice plants clamped by the clamping plate, so that the dial plate scatters the saline-alkali soil at the root of the rice plants, and the saline-alkali soil falls back into the cultivation frame again. While avoiding taking out the necrotic rice plants, a large amount of saline-alkali soil is also taken out, resulting in the need to add saline-alkali soil again when conducting experiments on another batch of rice plants later, which is rather troublesome. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a schematic structural diagram disclosed for the cultivation device for high-yield rice planting of the present invention;

[0018] Figure 2 is a schematic combined structural diagram of the collection box, the first handle and the second handle disclosed for the cultivation device for high-yield rice planting of the present invention;

[0019] Figure 3 is a schematic combined structural diagram of the first motor, the clamping plate, the camera, the second motor, the dial plate, the airbag, the hollow plate, the L-shaped plate and the electric push rod disclosed for the cultivation device for high-yield rice planting of the present invention;

[0020] Figure 4 is a schematic combined structural diagram of the gap on the clamping plate and the air inlet pipe and the straight groove on the airbag disclosed for the cultivation device for high-yield rice planting of the present invention;

[0021] Figure 5 is a schematic combined structural diagram of the tip on the dial plate and the water outlet on the hollow plate disclosed for the cultivation device for high-yield rice planting of the present invention;

[0022] Figure 6 is a schematic combined structural diagram of the water inlet pipe, the first connecting pipe and the baffle disclosed for the cultivation device for high-yield rice planting of the present invention;

[0023] Figure 7 for the present invention Figure 6 is the enlarged view at A in;

[0024] Figure 8 is the exploded view of the clamping plate and the dial plate disclosed for the cultivation device for high-yield rice planting of the present invention.

[0025] Among them, the above-mentioned drawings include the following reference numerals: 1-First connecting frame, 2-Culture frame, 3-First moving part, 4-Second moving part, 5-Second connecting frame, 6-First motor, 7-Clamping plate, 8-Camera, 9-Second motor, 10-Pushing plate, 11-Airbag, 12-Hollow plate, 13-Water inlet pipe, 14-L-shaped plate, 15-First connecting pipe, 16-Second connecting pipe, 17-Obstructing piece, 18-Collection box, 19-Electric push rod, 20-First handle, 21-Second handle, 101-Clamping groove, 701-Clearance, 1001-Tip, 1111-Fixing part, 1112-Expansion part, 1101-Air inlet pipe, 1102-Straight groove, 1103-Convex part, 1104-Square groove, 1201-Water outlet. Detailed implementation manners

[0026] First of all, it should be pointed out that in different described implementation manners, the same components are provided with the same reference numerals or the same component names. Among them, the disclosure content included in the entire specification can be transferred meaningfully to the same components with the same reference numerals or the same component names. The position descriptions selected in the specification, such as up, down, lateral, etc., also refer to the directly described and shown drawings and are transferred meaningfully to the new positions when the positions change.

[0027] Embodiment 1

[0028] A cultivation device for high-yield rice planting, as Figures 1-6 and Figure 8 shown, includes a first connecting frame 1 and a culture frame 2; Nine culture frames 2 are placed on the first connecting frame 1;

[0029] It also includes a moving part 1 3, a moving part 2 4, a connecting frame 2 5, a motor 1 6, a clamp 7, a camera 8, a motor 2 9, a dial plate 10, a collection box 18 and an electric push rod 19; the collection box 18 is bolted to the culture frame 2 on the far left; two moving parts 1 3 are bolted to the connecting frame 1, and each moving part 1 3 is composed of an electric guide rail and a slider; all the moving parts 1 3 are fixedly connected to the moving part 2 4, and the moving part 2 4 is composed of an electric guide rail and a slider, and the slider of the moving part 1 3 is fixedly connected to the electric guide rail of the moving part 2 4; the slider of the moving part 2 4 is bolted to the electric push rod 19; the telescopic part of the electric push rod 19 is fixedly connected to the connecting frame 25, the bottom of the connecting frame 25 is cross-shaped; four clamps 7 are rotatably connected to the bottom of the connecting frame 25; four motors 16 are fixedly connected to the bottom of the connecting frame 25, and the output shaft of each motor 16 is fixedly connected to the corresponding clamp 7; each clamp 7 is provided with a plurality of gaps 701, and the gaps 701 on the two clamps 7 arranged opposite to each other are staggered; a camera 8 is bolted to the bottom of the connecting frame 25; a motor 29 is bolted to the clamp 7 on the left and the clamp 7 on the right; the rotating part of each motor 29 passes through the entire clamp 7, and the rotating part of each motor 29 is fixedly connected to a plurality of dial plates 10, and each dial plate 10 is fitted with the corresponding clamp 7.

[0030] A plurality of slots 101 are provided on the connecting frame 1. By placing the culture frame 2 in the slots 101, the problem of the culture frame 2 being shifted due to accidental collision by humans can be avoided.

[0031] The bottom of each clamping plate 7 is pointed, so that the clamping plate 7 can be better inserted into the agglomerated saline-alkali soil.

[0032] It also includes an airbag 11; the airbag 11 consists of a fixing portion 1111 and an expansion portion 1112; the splints 7 located on the left and right sides are each connected to an airbag 11, the fixing portion 1111 of the airbag 11 is connected to the splint 7, an air inlet pipe 1101 is provided on the expansion portion 1112 of each airbag 11, and a plurality of straight grooves 1102 are provided on the fixing portion 1111 of each airbag 11.

[0033] The airbag 11 is made of wear-resistant rubber material, which increases the service life of the airbag 11.

[0034] The paddle plate 10 is provided with a tip 1001, so that when the paddle plate 10 paddles the saline-alkali soil at the root of the rice plant, the tip 1001 is inserted into the saline-alkali soil, which facilitates the saline-alkali soil to separate from the necrotic rice plant.

[0035] The collecting box 18 is detachably connected to the culture frame 2 , so that the experimenter can transfer the necrotic rice plants in the collecting box 18 .

[0036] It also includes a first handle 20 and a second handle 21; the first handle 20 is fixedly connected to the upper part of the collection box 18; the second handle 21 is fixedly connected to the left side of the collection box 18.

[0037] The working mode of the above embodiment is as follows:

[0038] When conducting the experiment, first, manually pour saline-alkali soil into the culture frame 2, and divide the nine culture frames 2 into three groups. Counting from left to right, every three form a group. Subsequently, add different neutral fertilizer solutions or acidic fertilizer solutions to the three groups of culture frames 2, making the saline-alkali soil in the leftmost group acidic, the middle group neutral, and the rightmost group alkaline. Then plant rice plants in all the culture frames 2, and then count the survival rate of the rice plants in each culture frame 2 to detect the impact of saline-alkali soil with different pH values on rice plants in saline-alkali land, so as to facilitate the subsequent improvement of saline-alkali land. Considering that since the rice cultivation experiment requires sufficient comparison data and control groups, and the experimental land or experimental box for rice cultivation has a certain length and width, it is difficult for experimenters to observe the growth of rice in the middle of the experimental land or experimental box, which is not convenient for evaluating rice cultivation. Therefore, when the experimenter needs to observe the rice, the first moving member 3 and the second moving member 4 drive the electric push rod 19, the second connecting frame 5, the first motor 6, the clamping plate 7 and the camera 8 to move left and right and back and forth respectively, so as to observe the growth state of the rice plants in each culture frame 2 through the camera 8. And the experimenter only needs to observe the growth state of the rice plants photographed by the camera 8 through the system screen, which greatly facilitates the experimenter to observe the growth state of the rice plants.

[0039] During the growth process of rice plants, if the experimenter discovers necrotic rice plants through camera 8, at this time, the first moving part 3 and the second moving part 4 drive the electric push rod 19, the second connecting frame 5, the first motor 6, the clamping plate 7 and the camera 8 to move above the necrotic rice plants. Subsequently, control the electric push rod 19 to push the second connecting frame 5, the first motor 6, the clamping plate 7 and the camera 8 to move downward. At the same time, control the first motor 6 to drive the clamping plate 7 to rotate, so that the clamping plate 7 rotates away from the camera 8. Stop when the tip at the bottom of the clamping plate 7 is vertically downward. Subsequently, continue to control the electric push rod 19 to push the second connecting frame 5, the first motor 6, the clamping plate 7 and the camera 8 to move downward, so that the clamping plate 7 is inserted into the saline-alkali soil. Then, control the first motor 6 to drive the clamping plate 7 to rotate towards the camera 8, so that the four clamping plates 7 clamp the necrotic rice plants and the nearby saline-alkali soil at the same time. Subsequently, control the electric push rod 19 to drive the second connecting frame 5, the first motor 6, the clamping plate 7 and the camera 8 to move upward, so that the clamping plate 7 lifts the necrotic rice plants and the adhered saline-alkali soil upward. Subsequently, control the first moving part 3 and the second moving part 4 to drive the electric push rod 19, the second connecting frame 5, the first motor 6, the clamping plate 7 and the clamped rice plants and saline-alkali soil to move above the collection box 18. Subsequently, control the first motor 6 to drive the clamping plate 7 to rotate away from the camera 8, so that the clamping plate 7 loosens. Then, the necrotic rice plants and the saline-alkali soil fall into the collection box 18 for collection, avoiding the problem that it is not easy for the experimenter to take out some rice plants for research due to the certain length and width of the experimental field or experimental box for rice cultivation.

[0040] However, when taking out the necrotic rice plants, a large amount of saline-alkali soil is also taken out, resulting in a reduction of the saline-alkali soil in the corresponding culture frame 2. When conducting another batch of rice plant experiments later, it is necessary to add saline-alkali soil again, which is rather troublesome, and the nutrients in the saline-alkali soil are also wasted. Therefore, after the clamping plate 7 lifts the necrotic rice plants and the nearby saline-alkali soil upward, control the second motor 9 to drive the dial 10 to rotate towards the camera 8, so that the dial 10 stirs the saline-alkali soil at the roots of the rice plants clamped by the clamping plate 7, so that the dial 10 scatters the saline-alkali soil at the roots of the rice plants, and the saline-alkali soil falls back into the culture frame 2 again, avoiding the situation that when taking out the necrotic rice plants, a large amount of saline-alkali soil is also taken out, resulting in the need to add saline-alkali soil again when conducting another batch of rice plant experiments later, which is rather troublesome.

[0041] It is also considered that when the dial 10 stirs the saline-alkali soil at the root of the rice plant clamped by the clamping plate 7, since the necrotic rice plant is only connected to the saline-alkali soil through the root, the saline-alkali soil is clamped by the clamping plate 7, while the main body of the rice plant is not fixed. When the dial 10 stirs the saline-alkali soil of the clamping plate 7, the dial 10 pushes up the rice plant, causing the rice plant to fall back to its original position through the gap between the clamping plates 7. Therefore, before clamping and transferring the necrotic rice plant and the saline-alkali soil by the clamping plate 7, the external air pump is first used to pump air into the airbag 11 through the air inlet pipe 1101 to expand the airbag 11, as Figure 4 shown. After the clamping plate 7 is inserted into the saline-alkali soil, first control the motors 6 on the left and right to drive the corresponding clamping plates 7 to rotate first in the direction close to the camera 8, and make the lower ends of the clamping plates 7 on the left and right cross each other. Then control the motors 6 on the front and rear sides to drive the corresponding clamping plates 7 to rotate in the direction close to the camera 8. The clamping plates 7 on the front and rear sides are respectively abutted against the clamping plates 7 on the left and right. When the clamping plates 7 on the left and right move, they will respectively drive the corresponding airbags 11 to move synchronously, so that the two airbags 11 clamp the necrotic rice plant. During the process of clamping the necrotic rice plant by the two airbags 11, the airbags 11 squeeze the saline-alkali soil, so that most of the saline-alkali soil falls back into the culture frame 2. Then use the dial 10 to stir the remaining saline-alkali soil on the necrotic rice plant. In this way, the necrotic rice plant is clamped by the airbag 11, avoiding the problem that the rice plant is pushed up and falls back to its original position when the dial 10 stirs the saline-alkali soil. At the same time, when the necrotic rice plant is clamped by the airbag 11, most of the saline-alkali soil can also fall back into the culture frame 2, which is beneficial to improving the efficiency of the dial 10 to stir and clean the saline-alkali soil.

[0042] It should be noted that: there is a straight groove 1102 on the airbag 11 for the dial 10 to move, so as to avoid the dial 10 being restricted by the airbag 11. At the same time, there is a tip 1001 on the dial 10, so that when the dial 10 stirs the saline-alkali soil at the root of the rice plant, the tip 1001 is inserted into the saline-alkali soil, which is convenient for the saline-alkali soil to separate from the necrotic rice plant. At the same time, when the clamping plate 7 is inserted into the soil to clamp and transfer the necrotic rice plant, the hollow plate 12 does not contact the saline-alkali soil.

[0043] When it is necessary to water the rice plants in the cultivation frame 2, the rice plants in the cultivation frame 2 are watered by an external watering device. When it is necessary to transfer the necrotic rice plants in the collection box 18, the experimenter disassembles the collection box 18, then holds the handle one 20 with one hand and drives the collection box 18 to move. When it is necessary to pour out the necrotic rice plants in the collection box 18, the experimenter holds the handle two 21 with the other hand and reverses the handle two 21, so that the collection box 18 rotates synchronously with the handle two 21, thereby facilitating the pouring out of the necrotic rice plants.

[0044] Embodiment 2

[0045] Based on Embodiment 1, as Figures 3-7 shown, it further includes a hollow plate 12, a water inlet pipe 13, an L-shaped plate 14, a connecting pipe one 15 and a connecting pipe two 16; A hollow plate 12 is connected to each of the clamping plates 7 on the left and right; The airbag 11 is located in the middle of the corresponding hollow plate 12; A water inlet pipe 13 is fixedly connected and communicated with each hollow plate 12; A plurality of convex portions 1103 are provided on each airbag 11, and a plurality of square grooves 1104 are formed on the front side and the rear side of each convex portion 1103, and the length of each square groove 1104 is the same as the length of the straight groove 1102; An L-shaped plate 14 is fixedly connected to the upper part of each of the clamping plates 7 on the left and right, and the telescopic part of each L-shaped plate 14 is fixedly connected to the corresponding hollow plate 12; A plurality of connecting pipes one 15 are fixedly connected to the hollow plate 12, and all the connecting pipes one 15 are communicated with the internal space of the hollow plate 12; Each connecting pipe one 15 is fixedly connected and communicated with a plurality of connecting pipes two 16, and all the connecting pipes two 16 are communicated with the corresponding square grooves 1104.

[0046] It further includes a baffle 17; A baffle 17 is fixedly connected to each convex portion 1103.

[0047] The working modes of the above embodiments are as follows:

[0048] Considering that since the clamping plate 7 and the shifting plate 10 will be inserted into the saline-alkali soil, after the clamping plate 7 and the shifting plate 10 take out the necrotic rice plants, the edges where the clamping plate 7 and the shifting plate 10 are in contact adhere to the soil. If not cleaned in time, when the soil hardens and cakes, the clamping plate 7 and the shifting plate 10 will stick together, affecting the shifting of the saline-alkali soil at the roots of the subsequent rice plants by the shifting plate 10. And simply by the mutual dislocation of the clamping plate 7 and the shifting plate 10, the adhered saline-alkali soil cannot be effectively cleaned. Therefore, after the necrotic rice plants are cleaned by the clamping plate 7 and the shifting plate 10, control the first motor 6 to drive the corresponding clamping plate 7 to rotate and reset. Then first control the first moving member 3 and the second moving member 4 to drive the clamping plate 7, the shifting plate 10 and their related components to move to directly above the front side of the leftmost cultivation frame 2. This position is the starting point of movement. Then control the external water pump to communicate with the water inlet pipe 13, and then pump water into the water inlet pipe 13. The water will flow into the internal space of the hollow plate 12 through the water inlet pipe 13. Part of the water flows out from the water outlet 1201 and drops into the cultivation frame 2. Since the inflated airbag 11 will block the water flowing out from the water outlet 1201, therefore, release the air in the airbag 11 through the external air pump, so that the whole airbag 11 shrinks and is no longer directly below the water outlet 1201, thus avoiding the airbag 11 blocking the water. Another part of the water flows into the first connecting pipe 15 and the second connecting pipe 16 from the internal space of the hollow plate 12, and then flows to the square groove 1104. At this time, the water flow will wash the edges where the clamping plate 7 and the shifting plate 10 are in contact, and flow downward along the edges where the clamping plate 7 and the shifting plate 10 are in contact, so that the water flow flushes the surfaces of the clamping plate 7 and the shifting plate 10. At the same time, control the second motor 9 to drive the shifting plate 10 to rotate reciprocally, so that the space between the clamping plate 7 and the shifting plate 10 can also be flushed by the water flow, washing the adhered saline-alkali soil clean, thus avoiding the edges where the clamping plate 7 and the shifting plate 10 are in contact from adhering to the soil. If not cleaned in time, when the soil hardens and cakes, the clamping plate 7 and the shifting plate 10 will stick together, resulting in the problem that the shifting plate 10 cannot shift the saline-alkali soil at the roots of the subsequent rice plants. At the same time, when the water flow washes the edges where the clamping plate 7 and the shifting plate 10 are in contact, control the first moving member 3 and the second moving member 4 to drive the clamping plate 7, the shifting plate 10 and their related components to move along all the cultivation frames 2 from the starting point, so that the water dropping during the cleaning of the clamping plate 7 and the shifting plate 10 can flow into each cultivation frame 2 to water the rice plants in the cultivation frame 2. This method does not require an additional watering device, avoiding the problems of large occupied area and high cost existing in the need to add a large number of existing watering devices.

[0049] Meanwhile, since the length of each square groove 1104 is the same as that of the straight groove 1102, when water flows from the second connecting pipe 16 into the square groove 1104, the water will gush out from the square groove 1104 not blocked by the baffle 10, so that the water flushes the edge where the clamping plate 7 contacts the baffle 10, washing away the adhered saline-alkali soil. At the same time, by setting the baffle 17, the water rebounds to the side of the clamping plate 7 close to the baffle 17, thereby improving the flushing effect.

[0050] It should be noted that when the first motor 6 drives the clamping plate 7 to rotate, the clamping plate 7 will drive related components such as the airbag 11, the hollow plate 12, the water inlet pipe 13, and the L-shaped plate 14 to rotate synchronously.

[0051] The above has introduced the present application in detail. Specific examples are used in this article to elaborate on the principle and implementation manner of the present application. The description of the above embodiments is only used to help understand the method and its core idea of the present application. At the same time, for those of ordinary skill in the art, according to the idea of the present application, there will be changes in the specific implementation manner and application scope. In summary, the content of this specification should not be construed as a limitation to the present application.

Claims

1. A high-yield rice cultivation device, comprising a connecting frame (1) and a cultivation frame (2); a plurality of cultivation frames (2) are placed on the connecting frame (1); the device is characterized in that: The invention also comprises a moving part 1 (3), a moving part 2 (4), a connecting frame 2 (5), a motor 1 (6), a clamping plate (7), a camera (8), a motor 2 (9), a dial plate (10), a collection box (18) and an electric push rod (19); the collection box (18) is fixedly connected to the culture frame (2) located at the far left; a plurality of moving parts 1 (3) are fixedly connected to the connecting frame 1 (1); all the moving parts 1 (3) are fixedly connected to the moving part 2 (4); the moving part 2 (4) is fixedly connected to the electric push rod (19); the telescopic part of the electric push rod (19) is fixedly connected to the connecting frame 2 (5); the bottom of the connecting frame 2 (5) is cross-shaped; the bottom of the connecting frame 2 (5) is rotatably connected to a plurality of clamping plates for clamping and transferring necrotic rice plants (7); a plurality of motors (6) are fixedly connected to the bottom of the second connecting frame (5), and the output shaft of each motor (6) is fixedly connected to the corresponding clamping plate (7); a plurality of gaps (701) are opened on each clamping plate (7), and the gaps (701) on the two clamping plates (7) arranged opposite to each other are staggered; a camera (8) is fixedly connected to the bottom of the second connecting frame (5); a motor (9) is fixedly connected to the clamping plate (7) located on the left and the clamping plate (7) located on the right; the rotating part of each motor (9) passes through the entire clamping plate (7), and the rotating part of each motor (9) is fixedly connected to a plurality of paddles (10) for prying saline-alkali soil, and each paddle (10) is in contact with the corresponding clamping plate (7).

2. The high-yield rice cultivation device according to claim 1, characterized in that: A plurality of slots (101) are provided on the connecting frame 1 (1).

3. The high-yield rice cultivation device according to claim 1, characterized in that: The bottom of each clamping plate (7) is pointed.

4. The high-yield rice cultivation device according to claim 3 is characterized by: The device also includes an airbag (11); the airbag (11) is composed of a fixing portion (1111) and an expansion portion (1112); the clamping plates (7) located on the left and right sides are each connected to an airbag (11); the fixing portion (1111) of the airbag (11) is connected to the clamping plate (7); an air inlet pipe (1101) is provided on the expansion portion (1112) of each airbag (11); and a plurality of straight grooves (1102) are provided on the fixing portion (1111) of each airbag (11).

5. The high-yield rice cultivation device according to claim 4, characterized in that: The air bag (11) is made of wear-resistant rubber.

6. The high-yield rice cultivation device according to claim 1, characterized in that: The dial plate (10) is provided with a tip (1001).

7. The high-yield rice cultivation device according to claim 1, characterized in that: The collection box (18) is detachably connected to the culture frame (2).

8. The high-yield rice cultivation device according to claim 7, characterized in that: It also includes a handle 1 (20) and a handle 2 (21); the handle 1 (20) is fixedly connected to the upper part of the collection box (18); and the handle 2 (21) is fixedly connected to the left side of the collection box (18).

9. The high-yield rice cultivation device according to claim 4, characterized in that: The invention also comprises a hollow plate (12), a water inlet pipe (13), an L-shaped plate (14), a connecting pipe 1 (15) and a connecting pipe 2 (16); a hollow plate (12) is connected to each of the left and right clamping plates (7); the airbag (11) is located in the middle of the corresponding hollow plate (12); a water inlet pipe (13) is fixedly connected to and connected to each of the hollow plates (12); each of the airbags (11) is provided with a plurality of convex portions (1103); a plurality of square grooves (1104) are provided on the front side and the rear side of each convex portion (1103); each square groove (1104) is provided with a plurality of square grooves (1104); 104) have the same length as the straight groove (1102); an L-shaped plate (14) is fixedly connected to the upper part of the clamping plate (7) on the left and right sides, and the telescopic part of each L-shaped plate (14) is fixedly connected to the corresponding hollow plate (12); a plurality of connecting pipes (15) are fixedly connected to the hollow plate (12), and all the connecting pipes (15) are connected to the internal space of the hollow plate (12); each connecting pipe (15) is fixedly connected to and connected to a plurality of connecting pipes (16), and all the connecting pipes (16) are connected to the corresponding square groove (1104).

10. The high-yield rice cultivation device according to claim 9, characterized in that: It also includes a baffle (17); each convex portion (1103) is fixedly connected to a baffle (17).

Citation Information

Patent Citations

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