Method for breeding of parthenocissus tricuspidata seedlings
By using specific soil formulations and automated propagation devices, the intelligent problems of cutting and soil monitoring in the propagation of English ivy seedlings have been solved, improving the survival rate and propagation efficiency of seedlings.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2026-04-14
AI Technical Summary
In the current technology for propagating Chinese ivy seedlings, the lack of intelligent control in cutting and soil monitoring leads to insufficient survival rate of the propagated seedlings.
It uses a loose and fertile soil formula (leaf mold, garden soil, river sand and base fertilizer) combined with potassium dihydrogen phosphate solution, with an optimal growth temperature of 20℃-25℃, and uses an automated propagation device for cuttings and soil monitoring, including a spray treatment part and a cultivation and planting part, to achieve multi-angle spraying and multi-location planting.
It improved the survival rate of English ivy seedlings, enabled intelligent monitoring and control of soil moisture and temperature, and improved propagation efficiency.
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Figure CN119256855B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of ivy seedling propagation technology, specifically to a method for ivy seedling propagation. Background Technology
[0002] English ivy is a small shrub belonging to the genus *Hedera* in the family Araliaceae. Its slender, flexible branches can climb on other objects. Its leaves are small and densely packed, dark green on the upper surface and pale green on the underside. The inflorescence is an umbel-shaped raceme with pale yellow petals. The fruit is spherical, red or yellow, and the seeds are oval. Native to Europe, it is widely distributed in Fujian, Guangdong, Hubei, and Jiangsu provinces of China. Besides China, it is also found in Europe and North America. It prefers moist, loose, fertile soil and is intolerant of saline-alkali conditions. It typically grows at altitudes of 800-2500 meters in mountainous areas and is usually propagated by cuttings. It flowers in November.
[0003] Currently, the propagation of ivy seedlings on the market is carried out by cuttings. However, there are problems with the intelligent control of leaf spraying and soil monitoring. It is necessary to combine ivy seedling propagation with intelligent control to improve the survival rate of ivy seedlings. Summary of the Invention
[0004] To address the problems in the existing technology, this invention provides a method for propagating English ivy seedlings.
[0005] The technical solution adopted by the present invention to solve its technical problem is: a method for propagating ivy seedlings, S1, selecting loose, fertile and well-drained soil, which is prepared by mixing 4 parts leaf mold, 3 parts garden soil, 2 parts river sand and 1 part base fertilizer.
[0006] S2, the optimal growth temperature is 20℃-25℃, and 0.2% potassium dihydrogen phosphate solution is added to the soil for soil cultivation.
[0007] S3. Cut the English ivy into cuttings, insert them into the soil, and cover them.
[0008] S4. Provide sufficient light while monitoring temperature and soil moisture.
[0009] An ivy seedling propagation device includes a protective cover, a lighting tube, a first cultivation structure, a second cultivation structure, and a mounting bracket. The protective cover is fixedly connected to the upper end of the mounting bracket, and the lighting tube is installed on the protective cover. The first cultivation structure is located at the center of the mounting bracket, and the second cultivation structure is located at the lower end of the first cultivation structure. Both the first cultivation structure and the second cultivation structure are fixedly connected to the mounting bracket.
[0010] Specifically, the first breeding structure includes a first automated breeding component, a second automated breeding component, a base bracket, and a water treatment component. The first automated breeding component and the second automated breeding component are symmetrically arranged. The base bracket is fixedly connected to the lower end of the first automated breeding component and the second automated breeding component. A water treatment component is provided at the center of the first automated breeding component and the second automated breeding component. The water treatment component is used for water supply treatment of the first automated breeding component and the second automated breeding component.
[0011] Specifically, the first automated breeding component includes a first cultivation mechanism and a second cultivation mechanism. The first cultivation mechanism and the second cultivation mechanism are symmetrically arranged and have the same structure. The second cultivation mechanism includes a spray treatment section and a cultivation and planting section. The upper end of the cultivation and planting section is provided with the spray treatment section.
[0012] Specifically, the spray treatment section includes a mating seat, a guide rod, an electro-hydraulic telescopic rod, an adjusting frame, a hinged guide rod, a mating hinge block, a support frame, a connecting hose, a docking valve seat, and a spray treatment pipe. The upper end of the support frame is fixedly connected to the mating seat, and the guide rod is fixedly connected to the mating seat. An electro-hydraulic telescopic rod is hinged to the guide rod, and its lower end is hinged to the adjusting frame. The lower end of the adjusting frame is fixedly connected to the mating hinge block, which is hinged to the hinged guide rod. The hinged guide rod is fixedly connected to the support frame, and the side end of the mating hinge block... The system is equipped with a docking valve seat, with a connecting hose connected to the front end of the docking valve seat and a spray treatment pipe connected to the side end of the docking valve seat. The structure of the spray treatment section facilitates spraying operations, enables efficient and automated adjustment, and allows for multi-angle spraying. The upper end of the electro-hydraulic telescopic rod is limited by a guide rod. When the electro-hydraulic telescopic rod is extended, it can drive the adjustment frame and the hinge block to rotate around the hinge guide rod, thereby adjusting the angle of the spray treatment pipe. The connecting hose is connected to the spray treatment pipe through the docking valve seat, enabling the connection control of the spray treatment pipe and achieving multi-point spray treatment.
[0013] Specifically, the cultivation and planting section includes a partition plate, a built-in spray pipe, a water transmission seat, a sealed conduit, a soil monitoring sensor, a signal transmitter, and a protective sleeve. The partition plate is fixedly connected to the center of the protective sleeve. A soil monitoring sensor is provided at the upper end of the protective sleeve. The soil monitoring sensor is connected to the signal transmitter. A sealed conduit is provided at the rear end of the signal transmitter. The built-in spray pipe is connected at the upper end of the sealed conduit. The water transmission seat is connected at the rear end of the sealed conduit.
[0014] Specifically, the water guiding and treatment component includes a docking drain pipe, a main water pipe, an installation positioning block, an intelligent regulating valve, and a docking horizontal pipe. An intelligent regulating valve is installed on the side end of the docking horizontal pipe, and the side end of the intelligent regulating valve is connected to the main water pipe. The main water pipe is installed at the center of the installation positioning block, and the side end of the main water pipe is connected to the docking drain pipe. Through the structural design of the cultivation and planting section, cultivation processing can be carried out. A partition plate divides the interior of the protective sleeve block, thereby enabling multi-position planting processing. Soil monitoring sensors and signal transmitters are pre-embedded in the soil to collect soil information. Simultaneously, the water guiding transmission seat, sealed conduit, and built-in spray pipe are connected to enable soil water supply processing. The water guiding transmission seat is connected to the docking drain pipe, and drainage can be carried out through the docking horizontal pipe, docking horizontal pipe, and main water pipe, achieving the purpose of water flow and realizing soil water supply processing.
[0015] Specifically, the side end of the drain pipe is connected to the water transmission seat, and the water transmission seat is connected to the built-in spray pipe through a sealed conduit. The built-in spray pipe is located at the center of the partition plate.
[0016] Specifically, the lower end of the spray treatment pipe is provided with a spray nozzle, and the spray treatment pipe is connected to the outside through a docking valve seat and a connecting hose. The electro-hydraulic telescopic rod extends and retracts, causing the cooperating hinge block to rotate and adjust on the hinge guide rod, thereby changing the angle of the spray treatment pipe.
[0017] Specifically, the lower ends of the support frame and protective sleeve are fixedly connected to the base bracket, and the soil monitoring sensor and signal transmitter are electrically connected, and are electrically connected to an external computer through the signal transmitter.
[0018] The beneficial effects of this invention are:
[0019] First, the present invention facilitates spraying operations and enables efficient and automated adjustment through the structural design of the spraying treatment section, achieving multi-angle spraying. The upper end of the electro-hydraulic telescopic rod is limited by a guide rod. When the electro-hydraulic telescopic rod extends, it can drive the adjustment frame and the hinge block to rotate around the hinge guide rod, thereby adjusting the angle of the spraying treatment pipe. The connecting hose is connected to the spraying treatment pipe through the docking valve seat, enabling the connection control of the spraying treatment pipe and achieving multi-point spraying treatment.
[0020] Second, this invention enables cultivation processing through the structural design of the cultivation and planting section. The partition plate divides the interior of the protective sleeve, allowing for planting in multiple locations. Soil monitoring sensors and signal transmitters are embedded in the soil to collect soil information. Simultaneously, the water transmission seat, sealed conduit, and built-in sprinkler pipe are connected to supply water to the soil. The water transmission seat is connected to the drain pipe, and drainage is achieved through the horizontal pipe, the main water pipe, and the main water pipe, thus realizing the purpose of water supply and treatment for the soil. Attached Figure Description
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Figure 1 This is a three-dimensional structural diagram of the main body from a frontal perspective in this invention;
[0023] Figure 2 This is a side view three-dimensional structural diagram of the main body in this invention;
[0024] Figure 3 This is a frontal perspective three-dimensional structural diagram of the first cultivation structure in this invention;
[0025] Figure 4 This is a frontal perspective three-dimensional structural diagram of the first automated breeding component in this invention;
[0026] Figure 5 This is a three-dimensional structural diagram of the second cultivation mechanism from a frontal perspective in this invention;
[0027] Figure 6 This is a three-dimensional structural diagram of the spray treatment section from the front view in this invention;
[0028] Figure 7 This is a breakdown diagram of the cultivation and planting portion of the present invention;
[0029] Figure 8 This is a three-dimensional structural diagram of the water guiding and treatment component in this invention, viewed from the front.
[0030] In the diagram: 1-Protective cover, 2-Lighting tube, 3-First cultivation structure, 4-Second cultivation structure, 5-Mounting bracket, 6-First automated breeding component, 7-Second automated breeding component, 8-Base bracket, 9-Water guiding component, 10-First cultivation mechanism, 11-Second cultivation mechanism, 12-Spraying treatment section, 13-Cultivation and planting section, 14-Matching seat, 15-Guide rod, 16-Electro-controlled hydraulic telescopic rod, 17-Adjustable movement frame, 18-Hinged guide rod, 19-Matching hinge block, 20-Supporting frame, 21-Connecting hose, 22-Dating valve seat, 23-Spraying treatment pipe, 24-Separator plate, 25-Built-in spray pipe, 26-Water guiding transmission seat, 27-Sealed conduit, 28-Soil monitoring sensor, 29-Signal transmitter, 30-Protective sleeve block, 31-Dating drainage pipe, 32-Main water pipe, 33-Mounting positioning block, 34-Intelligent regulating valve, 35-Dating horizontal pipe. Detailed Implementation
[0031] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.
[0032] The invention will be further described below with reference to the accompanying drawings.
[0033] Example
[0034] like Figure 1-8 As shown, the present invention provides a method for propagating ivy seedlings, S1, using loose, fertile and well-drained soil, which is prepared by mixing 4 parts leaf mold, 3 parts garden soil, 2 parts river sand and 1 part base fertilizer.
[0035] S2, the optimal growth temperature is 20℃-25℃, and 0.2% potassium dihydrogen phosphate solution is added to the soil for soil cultivation.
[0036] S3. Cut the English ivy into cuttings, insert them into the soil, and cover them.
[0037] S4. Provide sufficient light while monitoring temperature and soil moisture.
[0038] An ivy seedling propagation device includes a protective cover 1, a lighting tube 2, a first cultivation structure 3, a second cultivation structure 4, and a mounting bracket 5. The protective cover 1 is fixedly connected to the upper end of the mounting bracket 5, and the lighting tube 2 is installed on the protective cover 1. The first cultivation structure 3 is located at the center of the mounting bracket 5, and the second cultivation structure 4 is located at the lower end of the first cultivation structure 3. Both the first cultivation structure 3 and the second cultivation structure 4 are fixedly connected to the mounting bracket 5.
[0039] The first breeding structure 3 includes a first automated breeding component 6, a second automated breeding component 7, a base bracket 8, and a water guiding and treatment component 9. The first automated breeding component 6 and the second automated breeding component 7 are symmetrically arranged. The base bracket 8 is fixedly connected to the lower end of the first automated breeding component 6 and the second automated breeding component 7. The water guiding and treatment component 9 is provided at the center of the first automated breeding component 6 and the second automated breeding component 7. The water guiding and treatment component 9 is used for water supply treatment of the first automated breeding component 6 and the second automated breeding component 7.
[0040] The first automated propagation component 6 includes a first cultivation mechanism 10 and a second cultivation mechanism 11. The first cultivation mechanism 10 and the second cultivation mechanism 11 are symmetrically arranged and have the same structure. The second cultivation mechanism 11 includes a spray treatment section 12 and a cultivation and planting section 13. The upper end of the cultivation and planting section 13 is provided with the spray treatment section 12. The electro-hydraulic telescopic rod 16 can be telescopically controlled to drive the adjustment motion frame 17 to move. The adjustment motion frame 17 is connected to the mating hinge block 19, so that the mating hinge block 19 can be rotated and adjusted under the push. At this time, the mating hinge block 19 rotates on the hinge guide rod 18, changing the position of the connecting hose 21, the docking valve seat 22, and the spray treatment pipe 23. Water is introduced through the connecting hose 21 and discharged through the docking valve seat 22 and the spray treatment pipe 23 to carry out the spray treatment work, thereby facilitating the cutting and planting work. The protective cover 1 is fixed on the mounting bracket 5. The lighting tube 2 is installed on the protective cover 1 to carry out the lighting treatment work and improve the light capacity.
[0041] The spray treatment section 12 includes a mating seat 14, a guide rod 15, an electro-hydraulic telescopic rod 16, an adjusting motion frame 17, a hinged guide rod 18, a mating hinge block 19, a support frame 20, a connecting hose 21, a docking valve seat 22, and a spray treatment pipe 23. The upper end of the support frame 20 is fixedly connected to the mating seat 14, and the guide rod 15 is fixedly connected to the mating seat 14. The electro-hydraulic telescopic rod 16 is hinged to the guide rod 15. The lower end of the electro-hydraulic telescopic rod 16 is hinged to the adjusting motion frame 17, and the lower end of the adjusting motion frame 17 is fixedly connected to the mating hinge block 19. The mating hinge block 19 is hinged to the hinged guide rod 18, and the hinged guide rod 18 is fixedly connected to the support frame 20. The side end of the mating hinge block 19... The system includes a docking valve seat 22, with a connecting hose 21 connected to the front end of the docking valve seat 22 and a spray treatment pipe 23 connected to the side end of the docking valve seat 22. The structure of the spray treatment section 12 facilitates spraying operations, enables efficient and automated adjustment, and allows for multi-angle spraying. The upper end of the electro-hydraulic telescopic rod 16 is limited by a guide rod 15. When the electro-hydraulic telescopic rod 16 is extended, it can drive the adjustment motion frame 17 and the hinge block 19 to rotate around the hinge guide rod 18, thereby adjusting the angle of the spray treatment pipe 23. The connecting hose 21 is connected to the spray treatment pipe 23 through the docking valve seat 22, enabling the connection control of the spray treatment pipe 23 and achieving multi-point spray treatment.
[0042] The cultivation and planting section 13 includes a partition plate 24, an internal spray pipe 25, a water transmission seat 26, a sealed conduit 27, a soil monitoring sensor 28, a signal transmitter 29, and a protective sleeve block 30. The partition plate 24 is fixedly connected to the center of the protective sleeve block 30. The soil monitoring sensor 28 is located at the upper end of the protective sleeve block 30 and is connected to the signal transmitter 29. The sealed conduit 27 is located at the rear end of the signal transmitter 29. The internal spray pipe 25 is connected to the upper end of the sealed conduit 27, and the water transmission seat 26 is connected to the rear end of the sealed conduit 27. The partition plate 24 divides the protective sleeve block 30, and the protective sleeve... The groove on the side of block 30 is protected by glass. Soil is placed in the center of the partition plate 24, which allows seedlings to be inserted into the soil. At this time, the soil monitoring sensor 28 can monitor the soil and transmit signals through the signal transmitter 29. When the soil is short of water, the connecting horizontal pipe 35 introduces water through the intelligent regulating valve 34. The water can be introduced into the connecting drain pipe 31 through the main water pipe 32. The connecting drain pipe 31 is connected to the water transmission seat 26. The water transmission seat 26 is connected to the built-in spray pipe 25 through the sealed conduit 27, so that water can be introduced to carry out soil wetting treatment.
[0043] The water guiding and treatment component 9 includes a docking drain pipe 31, a main water pipe 32, an installation positioning block 33, an intelligent regulating valve 34, and a docking horizontal pipe 35. The intelligent regulating valve 34 is installed on the side end of the docking horizontal pipe 35, and the main water pipe 32 is connected to the side end of the intelligent regulating valve 34. The main water pipe 32 is installed at the center of the installation positioning block 33, and the docking drain pipe 31 is connected to the side end of the main water pipe 32. Through the structural setting of the cultivation and planting part 13, cultivation and treatment work can be carried out. The partition plate 24 divides the inside of the protective sleeve block 30, thereby enabling multi-position planting and treatment work. The soil monitoring sensor 28 and the signal transmitter 29 are embedded in the soil to collect soil information. At the same time, the water guiding transmission seat 26, the sealed conduit 27, and the built-in spray pipe 25 are connected to carry out soil water supply and treatment work. The water guiding transmission seat 26 is connected to the docking drain pipe 31. Through the docking horizontal pipe 35, the docking horizontal pipe 35, and the main water pipe 32, drainage work can be carried out to achieve the purpose of water passage and realize the soil water supply and treatment work.
[0044] The side end of the drain pipe 31 is connected to the water transmission seat 26, and the water transmission seat 26 is connected to the built-in spray pipe 25 through the sealed conduit 27. The built-in spray pipe 25 is located at the center of the partition plate 24.
[0045] The lower end of the spray treatment pipe 23 is provided with a spray port, and the spray treatment pipe 23 is connected to the outside through the docking valve seat 22 and the connecting hose 21. The electro-hydraulic telescopic rod 16 extends and retracts, so that the cooperating hinge block 19 rotates and adjusts on the hinge guide rod 18, thereby changing the angle of the spray treatment pipe 23.
[0046] The lower ends of the support frame 20 and the protective sleeve block 30 are fixedly connected to the base bracket 8. The soil monitoring sensor 28 and the signal transmitter 29 are electrically connected, and the signal transmitter 29 is electrically connected to an external computer.
[0047] The working principle is as follows: During use, the partition plate 24 divides the protective sleeve block 30, and the groove on the side of the protective sleeve block 30 is protected by glass. Soil is placed in the center of the partition plate 24, allowing seedlings to be inserted into the soil. At this time, the soil monitoring sensor 28 can monitor the soil, and the signal transmitter 29 can transmit the signal. When the soil is short of water, the connecting horizontal pipe 35 introduces water through the intelligent regulating valve 34. The water is introduced into the connecting drain pipe 31 through the main water pipe 32, and the connecting drain pipe 31 is connected to the water transmission seat 26. The water transmission seat 26 is connected to the built-in sprinkler pipe 25 through the sealed conduit 27, thereby introducing water to the soil. During the humidification process, the electro-hydraulic telescopic rod 16 can extend and retract, driving the adjustment frame 17 to move. The adjustment frame 17 is connected to the mating hinge block 19, allowing the mating hinge block 19 to rotate under push. At this time, the mating hinge block 19 rotates on the hinge guide rod 18, changing the position of the connecting hose 21, the docking valve seat 22, and the spray treatment pipe 23. Water is introduced through the connecting hose 21 and discharged through the docking valve seat 22 and the spray treatment pipe 23 for spray treatment, thus facilitating the cutting planting work. The protective cover 1 is fixed on the mounting bracket 5, and the lighting tube 2 is installed on the protective cover 1 to provide lighting and improve the light intensity, thus completing the work.
[0048] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A method for breeding a Hedera helix seedling, characterized by, Includes the following steps: S1. Select loose, fertile, and well-drained soil, which is made of 4 parts leaf mold, 3 parts garden soil, 2 parts river sand, and 1 part base fertilizer. S2, the optimal growth temperature is 20℃-25℃, and 0.2% potassium dihydrogen phosphate solution is added into the soil for soil cultivation; S3. Cut the English ivy into cuttings, insert them into the soil, and cover them. S4. Provide sufficient light while monitoring temperature and soil moisture; The device used in the propagation method of ivy seedlings, S3 and S4, includes a protective cover (1), a lighting tube (2), a first cultivation structure (3), a second cultivation structure (4), and a mounting bracket (5). The upper end of the mounting bracket (5) is fixedly connected to the protective cover (1), and the lighting tube (2) is installed on the protective cover (1). The center of the mounting bracket (5) is provided with the first cultivation structure (3), and the lower end of the first cultivation structure (3) is provided with the second cultivation structure (4). The first cultivation structure (3) and the second cultivation structure (4) are both fixedly connected to the mounting bracket (5). The first breeding structure (3) includes a first automated breeding component (6), a second automated breeding component (7), a base bracket (8), and a water treatment component (9). The first automated breeding component (6) and the second automated breeding component (7) are symmetrically arranged. The base bracket (8) is fixedly connected to the lower end of the first automated breeding component (6) and the second automated breeding component (7). The water treatment component (9) is provided in the center of the first automated breeding component (6) and the second automated breeding component (7). The water treatment component (9) is used for water supply treatment of the first automated breeding component (6) and the second automated breeding component (7). The first automated breeding component (6) includes a first breeding mechanism (10) and a second breeding mechanism (11). The first breeding mechanism (10) and the second breeding mechanism (11) are symmetrically arranged, and the first breeding mechanism (10) and the second breeding mechanism (11) have the same structure. The second breeding mechanism (11) includes a spray treatment part (12) and a cultivation and planting part (13). The upper end of the cultivation and planting part (13) is provided with the spray treatment part (12). The spray treatment section (12) includes a mating seat (14), a guide rod (15), an electro-hydraulic telescopic rod (16), an adjusting motion frame (17), a hinged guide rod (18), a mating hinge block (19), a support frame (20), a connecting hose (21), a docking valve seat (22), and a spray treatment pipe (23). The upper end of the support frame (20) is fixedly connected to the mating seat (14), and the guide rod (15) is fixedly connected to the mating seat (14). The guide rod (15) is hinged to the electro-hydraulic telescopic rod (16). The lower end of the hydraulic telescopic rod (16) is hinged to the adjusting motion frame (17), the lower end of the adjusting motion frame (17) is fixedly connected to the mating hinge block (19), the mating hinge block (19) is hinged on the hinge guide rod (18), the hinge guide rod (18) is fixedly connected to the support frame (20), the side end of the mating hinge block (19) is provided with a docking valve seat (22), the front end of the docking valve seat (22) is connected to a connecting hose (21), and the side end of the docking valve seat (22) is connected to a spray treatment pipe (23). The cultivation and planting section (13) includes a partition plate (24), an internal spray pipe (25), a water transmission seat (26), a sealed conduit (27), a soil monitoring sensor (28), a signal transmitter (29), and a protective sleeve (30). The partition plate (24) is fixedly connected to the center of the protective sleeve (30). The soil monitoring sensor (28) is provided at the upper end of the protective sleeve (30). The soil monitoring sensor (28) is connected to the signal transmitter (29). The sealed conduit (27) is provided at the rear end of the signal transmitter (29). The internal spray pipe (25) is connected at the upper end of the sealed conduit (27). The water transmission seat (26) is connected at the rear end of the sealed conduit (27). The water guiding and treatment component (9) includes a docking drain pipe (31), a main water pipe (32), a mounting positioning block (33), an intelligent regulating valve (34), and a docking horizontal pipe (35). The intelligent regulating valve (34) is installed on the side end of the docking horizontal pipe (35). The main water pipe (32) is connected to the side end of the intelligent regulating valve (34). The main water pipe (32) is installed at the center of the mounting positioning block (33). The docking drain pipe (31) is connected to the side end of the main water pipe (32). The side end of the docking drain pipe (31) is connected to the water transmission seat (26), and the water transmission seat (26) is connected to the built-in spray pipe (25) through the sealed conduit (27). The built-in spray pipe (25) is located at the center of the partition plate (24). The lower end of the spray treatment pipe (23) is provided with a spray port, and the spray treatment pipe (23) is connected to the outside through the docking valve seat (22) and the connecting hose (21). The electro-hydraulic telescopic rod (16) extends and retracts, so that the cooperating hinge block (19) rotates and adjusts on the hinge guide rod (18), thereby changing the angle of the spray treatment pipe (23). The lower ends of the support frame (20) and the protective sleeve (30) are fixedly connected to the base bracket (8). The soil monitoring sensor (28) and the signal transmitter (29) are electrically connected, and are electrically connected to an external computer through the signal transmitter (29).
Citation Information
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