Jasmine plant seedling raising device

By designing a jasmine plant seedling cultivation device with a rotating flower plate, lighting mechanism, spraying mechanism, and recycling mechanism, the problems of uneven distribution of pesticides and inconvenient operation were solved, achieving uniform light and nutrient supply, improving seedling cultivation efficiency, and saving water resources.

CN223979203UActive Publication Date: 2026-03-10YUANJIANG COUNTY WANRUI JASMINE FLOWER IND DEVELOPMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing jasmine plant seedling cultivation devices suffer from uneven distribution of pesticides during spraying, resulting in uneven supply to leaves and roots, inconvenient operation, and easy clogging of drainage holes, which affects plant growth.

Method used

A seedling raising device was designed, which includes a rotating flower plate, a lighting mechanism, a spraying mechanism, and a recycling mechanism. The rotating flower plate causes each plant to rotate, and the tilting lighting mechanism provides uniform light. The spraying mechanism precisely sprays nutrients, and the recycling mechanism filters and recycles water resources. An auxiliary clamp is set to facilitate the removal of the flower pot.

Benefits of technology

It achieves uniform light and nutrient supply to the plants, improves seedling efficiency, saves water resources, avoids damage to the plants when removing the flowerpots, and prevents pipe blockage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a jasmine plant seedling raising device which comprises a device body, a stirring box, a stirring rod, a water inlet, a water pump, a water supply pipe, a flowerpot and a control cabinet. The device body further comprises a shell, a rotating faceplate, a lamplight mechanism, a recycling mechanism, a spraying mechanism and an auxiliary clamp, the rotating faceplate is arranged on the upper portion in the shell, the lamplight mechanism is arranged above the rotating faceplate, the recycling mechanism is arranged below the rotating faceplate, the spraying mechanism is arranged above the shell, and the auxiliary clamp is arranged on the right side of the shell. The device has the functions that each plant can be fully illuminated, and meanwhile, an operator can accurately spray nutritional agents and liquid medicine to leaves and roots of the plants; when the plant grows up, the flowerpot at the middle position can be conveniently taken out through the auxiliary clamp; and water seeping from the lower part of the flowerpot can be collected, filtered and sent back to the stirring box for recycling, so that the water resource is saved while the pipeline is prevented from being blocked.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the technical field of seedling raising device, especially relates to a jasmine plant seedling raising device. BACKGROUND

[0002] In the process of seedling raising of jasmine, it is necessary to provide the jasmine plant with continuous and uniform light and nutrient medicine to ensure the uniform and continuous growth of the plant.

[0003] The prior art such as Chinese patent (CN212212090U) discloses a jasmine plant seedling raising device, which comprises a hollow circular seat, a plurality of flowerpot holes are uniformly formed in the top of the hollow circular seat and communicate with the inner cavity of the hollow circular seat, a flowerpot is inserted and placed in each flowerpot hole, a partition plate is arranged in the inner cavity of the hollow circular seat, a hollow pipe is vertically and upwardly penetrated and rotationally connected to the middle part of the inner cavity of the hollow circular seat, and a motor is fixedly installed at the bottom of the inner cavity of the hollow circular seat.

[0004] This mode has the following defects: 1. The device sprays water from above the flowerpot, and in the case of many plant leaves, most of the medicine sprayed from above will stay on the plant leaves, and only a small part can seep into the soil and be absorbed by the root system, which results in that the medicine cannot be uniformly supplied to the leaves and the root system; 2. The device is a disc structure, and when the seedling raising worker takes the flowerpot close to the inside of the disc, the worker's operation space for taking the flowerpot is reduced due to the obstruction of the external flowerpot and the plant leaves, and there is a risk of crushing the peripheral plants when taking from above, and the operation is inconvenient due to the limited space for taking from the side; 3. The medicine seeping from the bottom of the flowerpot after water spraying will carry part of the soil residue, and the accumulation of these soil residues will block the drainage hole for discharging sewage, resulting in that the sewage seeping from the bottom of the flowerpot cannot be discharged.

[0005] Therefore, the present application provides a jasmine plant seedling raising device. UTILITY MODEL CONTENTS

[0006] To solve the above technical problems, the utility model discloses a jasmine plant seedling raising device, which can ensure that each plant can obtain sufficient light, and the spraying mechanism can be automatically adjusted, so that the operator can accurately spray the nutrient agent and the medicine to the leaves and the root of the plant, ensuring that the plant can obtain uniform light and nutrients; when the plant grows taller, the auxiliary clamp can conveniently take out the flowerpot located in the middle position without causing damage to the peripheral plants; the water seeping from the bottom of the flowerpot can be collected, filtered and sent back to the stirring box for recycling, which prevents pipeline blockage and saves water resources.

[0007] To achieve the above-mentioned technical effects, this utility model provides a jasmine plant seedling cultivation device, including a device body, a mixing box, a mixing rod, a water inlet, a water pump, a water supply pipe, a flower pot, and a control cabinet. The mixing box is located on the left side of the device body, the mixing rod is rotatably located above the mixing box, the water inlet is located on the upper left side of the mixing box, the water pump is located inside the mixing box at the lower part, the water supply pipe is located in front of the water pump, passes through the mixing box, and connects to the device body, the flower pot is located above the device body, and the control cabinet is located on the side of the device body and is electrically connected to the device body and the water pump. The device body also includes a shell, a rotating flower disc, a lighting mechanism, a recycling mechanism, a spraying mechanism, and auxiliary clamps. The rotating flower disc is located inside the shell at the upper part, the lighting mechanism is located above the rotating flower disc, the recycling mechanism is located below the rotating flower disc, the spraying mechanism is located above the shell, and the auxiliary clamps are located on the right side of the shell.

[0008] Preferably, the rotating flower disc further includes a drive motor, a sun gear, planetary gears a, b, c, and d, a gear ring a, b, c, and a holder. The drive motor is located inside the lower part of the outer casing, and the sun gear is located on the output end above the drive motor. Planetary gears a are respectively located on the side of the sun gear and mesh with it. Planetary gears b are respectively located on the outside of planetary gears a, and planetary gears a and b are connected by meshing with the gear ring a. The gear ring a rotates in the interlayer of the outer casing through a groove. Planetary gears c are respectively located on the outside of planetary gears b, and planetary gears c and b are connected by meshing with the gear ring b. The gear ring b rotates in the interlayer of the outer casing through a groove. The inner side of the gear ring c meshes with the outer side of the planetary gears c. Planetary gears d are respectively meshed with the outer side of the gear ring c. The holder is located in the middle of planetary gears a, b, c, and d.

[0009] Preferably, the lighting mechanism further includes a rotating shaft, light strips, and a power supply. The rotating shaft is coaxially rotatably connected above the sun gear, the light strips are respectively inclinedly arranged on the side of the top of the rotating shaft, and the power supply is located above the light strips and electrically connected to the light strips.

[0010] Preferably, the tilt angle of the light strip is set between 0° and 45°.

[0011] Preferably, the spraying mechanism further includes a ring pipe, a bracket, spray pipes, and fixing clamps. The ring pipe is mounted on the upper part of the outer shell via the bracket. The front side of the ring pipe is connected to the water supply pipe. The spray pipes are respectively mounted on the upper part of the ring pipe, and the fixing clamps are respectively mounted on the ring pipe between the spray pipes.

[0012] Preferably, the spray pipe further includes a bottom valve, a gooseneck pipe, and a nozzle, with the bottom valve located below the gooseneck pipe and the nozzle located at the top of the gooseneck pipe.

[0013] Preferably, the recycling mechanism further includes a recycling hopper, a water storage chamber, a return water pipe, and a filter. The recycling hopper is located below the basin frame, and the water storage chamber is located below the recycling hopper. The water storage chamber and the recycling hopper are isolated from the output shaft of the drive motor in the middle. The return water pipe is located on the side of the water storage chamber and its left side is connected to the mixing tank. The filter is located on the return water pipe to the left of the drive motor.

[0014] Preferably, the auxiliary clamp further includes a chuck, a base, and a clamping rod. The chuck is located on the right side of the housing, the base is located below the chuck, and the clamping rod is placed above the base and clamped onto the chuck.

[0015] Preferably, the clamping rod further includes an anti-slip grip, a large sleeve, a small sleeve, a hook, a support rod, a sliding sleeve, a spring, and a support base. The anti-slip grip is located at the upper end of the large sleeve, the small sleeve is slidably fitted inside the large sleeve, the upper outer end of the small sleeve and the lower inner end of the large sleeve are provided with a threaded connection structure, the hook is located at the lower front side of the small sleeve, the support rod is located at the lower right side of the small sleeve, the sliding sleeve is slidably fitted with the support rod, the spring is located between the support rod and the sliding sleeve, and the support base is located at the front end of the sliding sleeve.

[0016] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0017] The device is equipped with a rotating flower tray, a lighting mechanism, and a spraying mechanism. The rotating flower tray allows each flowerpot to rotate independently around its center, simultaneously rotating the tilted lighting mechanism to ensure that each plant receives sufficient light. The automatically adjustable spraying mechanism allows the operator to precisely spray nutrients and pesticides onto the leaves and roots of the plants, ensuring even light and nutrient distribution. An auxiliary clamp is included to easily remove the flowerpot located in the middle as the plants grow taller, without damaging the outer plants. A recycling mechanism collects water seeping from the bottom of the flowerpots, filters it, and returns it to the mixing tank for reuse, preventing pipe blockage and conserving water resources. Attached Figure Description

[0018] Figure 1 This is an isometric view of the present invention;

[0019] Figure 2 This is a front view of the present invention;

[0020] Figure 3 yes Figure 2 A sectional view of section a.

[0021] Figure 4 This is the left view of this utility model;

[0022] Figure 5 yes Figure 4A sectional view of section b in the middle;

[0023] Figure 6 Isometric view of the clamping rod in this utility model;

[0024] Figure 7 This is a schematic diagram of the internal structure of the clamping rod in this utility model;

[0025] Figure 8 yes Figure 7 A partial schematic diagram of c in the middle;

[0026] The attached diagram lists the components represented by each number as follows:

[0027] 1. Mixing tank; 2. Mixing rod; 3. Water inlet; 4. Water pump; 5. Water supply pipe; 6. Flower pot; 7. Outer shell; 8. Rotating flower disc; 9. Lighting mechanism; 10. Recycling mechanism; 11. Spraying mechanism; 12. Auxiliary clamp; 13. Drive motor; 14. Sun gear; 15. Planetary gear a; 16. Planetary gear b; 17. Planetary gear c; 18. Planetary gear d; 19. Gear ring a; 20. Gear ring b; 21. Gear ring c; 22. Pot stand; 23. Rotating shaft; 24. LED strip; 25. Power supply; 26. Ring pipe; 27. Bracket; 28. Sprinkler pipe; 29. ​​Fixing clamp; 30. Bottom valve; 31. Gooseneck pipe; 32. Sprinkler head; 33. Recycle bin; 34. Water storage chamber; 35. Return water pipe; 36. Filter; 37. Clamp; 38. Base; 39. Clamping rod; 40. Anti-slip grip; 41. Large sleeve; 42. Small sleeve; 43. Hook; 44. Support rod; 45. Sliding sleeve; 46. Spring; 47. Support base. Detailed Implementation

[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model. Example 1

[0029] like Figures 1 to 8 As shown:

[0030] The prior art in this embodiment has the following problems: The inventors have found the following defects in the prior art: 1. When the device sprays water from above the flowerpot, if the plant has many leaves, most of the sprayed water will remain on the leaf surface, and only a small portion can seep into the soil and be absorbed by the roots. This results in the water not being evenly supplied to the leaves and roots. 2. The device has a disc structure. When nursery workers pick up the flowerpots near the inside of the disc, they are blocked by the outer flowerpots and plant leaves, which reduces the operating space for nursery workers to pick up the flowerpots. Picking them up from above may damage the outer plants, and picking them up from the side is inconvenient due to limited space. 3. After spraying water, the water seeping out from the bottom of the flowerpot will carry some soil residue. This soil residue will accumulate and block the drainage hole for sewage, preventing the sewage seeping from the bottom of the flowerpot from being discharged.

[0031] Therefore, the inventor provides a jasmine plant seedling cultivation device, including a device body, a mixing tank 1, a mixing rod 2, a water inlet 3, a water pump 4, a water supply pipe 5, a flower pot 6, and a control cabinet. The mixing tank 1 is located on the left side of the device body, the mixing rod 2 is rotatably located above the mixing tank 1, the water inlet 3 is located on the upper left side of the mixing tank 1, the water pump 4 is located inside the mixing tank 1 at the lower level, the water supply pipe 5 is located in front of the water pump 4, passes through the mixing tank 1, and connects to the device body, the flower pot 6 is located above the device body, and the control cabinet (not shown in the figure) is located on the side of the device body and is electrically connected to the device body and the water pump 4. The device body also includes a shell 7, a rotating flower disc 8, a lighting mechanism 9, a recycling mechanism 10, a spraying mechanism 11, and an auxiliary clamp 12. The rotating flower disc 8 is located inside the upper level of the shell 7, the lighting mechanism 9 is located above the rotating flower disc 8, the recycling mechanism 10 is located below the rotating flower disc 8, the spraying mechanism 11 is located above the shell 7, and the auxiliary clamp 12 is located on the right side of the shell 7.

[0032] Using the above method, the plant pot 6 to be cultivated is placed on the rotating flower plate 8. The plant in the pot 6 can rotate on the rotating flower plate 8. At the same time, the lighting mechanism 9 rotates in conjunction with the rotating flower plate 8 to provide light to the plant in the pot 6. The spraying mechanism 11 can spray nutrient water and medicine onto the plant when the pot 6 rotates. Excess water in the pot 6 will seep down from the holes at the bottom of the pot 6 and fall into the recycling mechanism 10 and be collected into the mixing tank 1. The medicine is added into the mixing tank 1 through the water inlet 3. The medicine can be stirred and mixed using the stirring rod 2. The stirred medicine is extracted by the water pump 4 and then sent to the spraying mechanism 11 through the water supply pipe 5. When it is time to collect the plant, the pot 6 near the center of the rotating flower plate 8 can be picked up using the auxiliary clamp 12. Example 2

[0033] like Figures 1 to 8 As shown:

[0034] Furthermore, the rotating flower disc 8 also includes a drive motor 13, a sun gear 14, planetary gears a15, b16, c17, d18, a gear ring a19, b20, c21, and a holder 22. The drive motor 13 is located inside the lower part of the housing 7. The sun gear 14 is located on the output end above the drive motor 13. The planetary gears a15 are respectively located on the side of the sun gear 14 and mesh with it. The planetary gears b16 are respectively located on the outside of the planetary gears a15, and the planetary gears a15 and b16 are connected by a mechanism. The gear ring a19 is engaged in a transmission connection and rotates through a groove in the interlayer of the outer shell 7. The planet gears c17 are respectively located on the outer side of the planet gears b16, and the planet gears c17 and b16 are connected by the gear ring b20. The gear ring b20 rotates through a groove in the interlayer of the outer shell 7. The inner side of the gear ring c21 is engaged with the outer side of the planet gears c17. The planet gears d18 are respectively engaged with the outer side of the gear ring c21. The frame 22 is respectively located in the middle of the planet gears a15, b16, c17, and d18.

[0035] When the device is running, the drive motor 13 drives the upper sun gear 14 to rotate, the sun gear 14 drives the planet gear a15 to rotate, the outer gear ring a19 of the planet gear a15 slides and rotates inside the outer casing 7, the rotation of the gear ring a19 drives the planet gear b16 to rotate, the planet gear b16 drives the gear ring b20 to rotate, the gear ring b20 drives the planet gear c17 to rotate, the planet gear c17 drives the gear ring c21 to rotate, and the gear ring c21 drives the outer planet gear d18 to rotate. In this way, by driving the sun gear 14 to rotate through the drive motor 13, all the planet gears in the entire sun gear 14 system rotate in their respective positions, so that the pot holder 22 on the planet gear can drive the flower pot 6 to rotate. Example 3

[0036] like Figures 1 to 8 As shown:

[0037] Furthermore, the lighting mechanism 9 also includes a rotating shaft 23, light strips 24, and a power supply 25. The rotating shaft 23 is coaxially rotatably connected above the sun gear 14. The light strips 24 are respectively inclinedly arranged on the side of the top of the rotating shaft 23. The power supply 25 is arranged above the light strips 24 and is electrically connected to the light strips 24.

[0038] Furthermore, the tilt angle of the light strip 24 is set between 0° and 45°;

[0039] The rotating shaft 23 rotates synchronously with the sun wheel 14, and the rotating shaft 23 drives the light strip 24 to rotate. The light strip 24 can be set to the angle of illumination on the plant in the flowerpot 6 below according to the actual use, so that the light shines on the plant from the side, ensuring that the entire plant can be illuminated. While the light mechanism 9 rotates to provide light, the flowerpot 6 itself will also rotate synchronously, which can ensure that the entire plant can receive uniform and sufficient light, and improve the plant's growth efficiency. Example 4

[0040] like Figures 1 to 8 As shown:

[0041] Furthermore, the spraying mechanism 11 also includes a ring pipe 26, a bracket 27, spray pipes 28, and a fixing clamp 29. The ring pipe 26 is mounted above the outer casing 7 via the bracket 27. The front side of the ring pipe 26 is connected to the water supply pipe 5. The spray pipes 28 are respectively mounted above the ring pipe 26. The fixing clamps 29 are respectively mounted on the ring pipe 26 between the spray pipes 28.

[0042] Furthermore, the spray pipe 28 also includes a bottom valve 30, a gooseneck pipe 31, and a nozzle 32. The bottom valve 30 is located below the gooseneck pipe 31, and the nozzle 32 is located at the top of the gooseneck pipe 31.

[0043] The water pump 4 pumps the agent in the mixing tank 1 into the ring pipe 26 through the water supply pipe 5. The ring pipe 26 supplies water to the spray pipe 28. The bracket 27 is used to fix the ring pipe 26. The body of the spray pipe 28 uses a gooseneck pipe 31 that can be freely rotated and fixed. The opening and closing of each spray pipe 28 is controlled by the bottom valve 30. When spraying, the bottom valve 30 is opened and the nozzle 32 is aimed at the side of the plant and the flower pot 6. As the flower pot 6 rotates, the nozzle 32 sprays enough water to the leaves and the roots of the plant. Then the nozzle 32 is moved to the side of the next plant to replenish water. Spray pipes 28 are set in four directions of the ring pipe 26, so that multiple operators can water the plants in different areas from different directions. This makes the flower pot 6 rotate itself, and then the spray pipe 28 is used to manually spray the plants from the side, which can ensure that the leaves and roots can get enough water and nutrients. Example 5

[0044] like Figures 1 to 8 As shown:

[0045] Furthermore, the recycling mechanism 10 also includes a recycling hopper 33, a water storage chamber 34, a return water pipe 35, and a filter 36. The recycling hopper 33 is located below the basin frame 22, and the water storage chamber 34 is located below the recycling hopper 33. The water storage chamber 34 and the recycling hopper 33 are isolated from the output shaft of the drive motor 13 in the middle. The return water pipe 35 is located on the side of the water storage chamber 34 and its left side is connected to the mixing tank 1. The filter 36 is located on the return water pipe 35 and is located to the left of the drive motor 13.

[0046] The excess water in the flowerpot 6 seeps out through the holes below and falls into the recycling hopper 33, then gathers in the water storage chamber 34. After being filtered by the filter 36, it enters the mixing tank 1 through the return water pipe 35 for recycling. The recycling hopper 33 and the water storage chamber 34 are isolated from the output shaft of the drive motor 13 to prevent water vapor from corroding the drive motor 13. In this way, the impurities in the seeping water are filtered by the filter 36 before being recycled, which prevents pipe blockage and saves water resources. Example 6

[0047] like Figures 1 to 8 As shown:

[0048] Furthermore, the auxiliary clamp 12 also includes a chuck 37, a base 38, and a clamping rod 39. The chuck 37 is located on the right side of the housing 7, the base 38 is located below the chuck 37, and the clamping rod 39 is placed above the base 38 and clamped on the chuck 37.

[0049] Furthermore, the clamping rod 39 also includes an anti-slip grip 40, a large sleeve 41, a small sleeve 42, a hook 43, a support rod 44, a sliding sleeve 45, a spring 46, and a support seat 47. The anti-slip grip 40 is located at the upper end of the large sleeve 41, and the small sleeve 42 is slidably fitted inside the large sleeve 41. The upper outer end of the small sleeve 42 and the lower inner end of the large sleeve 41 are provided with a threaded connection structure. The hook 43 is located at the lower front side of the small sleeve 42. The support rod 44 is located at the lower right side of the small sleeve 42. The sliding sleeve 45 is slidably fitted with the support rod 44. The spring 46 is located between the support rod 44 and the sliding sleeve 45. The support seat 47 is located at the front end of the sliding sleeve 45.

[0050] When the plant grows to the harvestable stage, the newly grown leaves and taller plant will obstruct the operator's access to the flowerpot 6 located inside the rotating flower plate 8. At this time, the operator can remove the clamping rod 39 placed on the side clamp 37 of the outer shell 7, slide out the small sleeve 42, and tighten the small sleeve 42 onto the large sleeve 41 through the threaded structure to complete the fixation. Then, hold the non-slip handle 40, hook the hook 43 onto the lower part of the handle on the side of the flowerpot 6, and place the support base 47 against the side of the flowerpot 6 to remove the flowerpot 6 from the side. When the support base 47 is against the side of the flowerpot 6, the sliding sleeve 45 slides on the outside of the support rod 44, and the spring 46 provides cushioning between the support rod 44 and the sliding sleeve 45. After use, the clamping rod 39 can be retracted and put back in its original position. In this way, when the plant grows taller and larger, the flowerpot 6 located in the middle can be easily removed through the auxiliary clamp 12 without damaging the outer plants.

[0051] In summary, this device is equipped with a rotating flower plate 8, a lighting mechanism 9, and a spraying mechanism 11. The rotating flower plate 8 allows each flowerpot 6 to rotate around its own center, while simultaneously rotating the tilted lighting mechanism 9 to ensure that each plant receives sufficient light. The automatically adjustable spraying mechanism 11 allows the operator to precisely spray nutrients and pesticides onto the leaves and roots of the plants, ensuring uniform light and nutrients. An auxiliary clamp 12 is provided to easily remove the flowerpot 6 located in the middle as the plants grow taller and larger, without damaging the outer plants. A recycling mechanism 10 collects water seeping from the bottom of the flowerpot 6, filters it, and returns it to the mixing tank 1 for reuse, preventing pipe blockage and conserving water resources.

[0052] The working principle of this utility model:

[0053] Before starting to cultivate the plants, add the agent into the mixing tank 1 through the water inlet 3. The agent can be mixed by stirring rod 2. The mixed agent is extracted by water pump 4 and then sent into the spraying mechanism 11 through water supply pipe 5.

[0054] The flowerpot 6 with the plant is placed in the pot holder 22. The drive motor 13, controlled by the control cabinet, drives the sun gear 14 to rotate. The sun gear 14 drives the planet gear a15 to rotate. The outer gear ring a19 of the planet gear a15 slides and rotates inside the outer shell 7. The rotation of the gear ring a19 drives the planet gear b16 to rotate. The planet gear b16 drives the gear ring b20 to rotate. The gear ring b20 drives the planet gear c17 to rotate. The planet gear c17 drives the gear ring c21 to rotate. The gear ring c21 drives the outer planet gear d18 to rotate. In this way, the drive motor 13 drives the sun gear 14 to rotate, so that all the planet gears in the sun gear 14 system rotate in their respective positions. This allows the pot holder 22 on the planet gears to drive the flowerpot 6 to rotate. Since the sun gear 14 is located in the middle, the rotation speed of the flowerpot 6 gradually decreases as it moves outward.

[0055] At the same time, the rotating shaft 23 and the sun wheel 14 rotate synchronously. The rotating shaft 23 drives the light strip 24 to rotate. The light strip 24 can be set to the angle of light aimed at the plant on the flower pot 6 below according to the actual use, so that the light shines on the plant from the side, ensuring that the entire plant can be illuminated. While the light mechanism 9 rotates to provide light, the flower pot 6 itself will also rotate synchronously, which can ensure that the entire plant can receive uniform and sufficient light and improve the plant's growth efficiency.

[0056] Water pump 4 pumps the agent in mixing tank 1 into ring pipe 26 through water supply pipe 5. Ring pipe 26 supplies water to spray pipe 28. Support 27 is used to fix ring pipe 26. The body of spray pipe 28 uses a gooseneck pipe 31 that can be rotated and fixed. The opening and closing of each spray pipe 28 is controlled by bottom valve 30. When spraying, the bottom valve 30 is opened and the nozzle 32 is aimed at the side of the plant and flower pot 6. As the flower pot 6 rotates, the nozzle 32 sprays enough water onto the leaves and roots of the plant. Then the nozzle 32 is moved to the side of the next plant to replenish water. Spray pipes 28 are set in four directions of ring pipe 26, so that multiple operators can water plants in different areas from different directions. This makes the flower pot 6 The plant rotates on its own, and then the spray pipe 28 is used to manually spray the plant from the side, which can ensure that the leaves and roots can receive sufficient water and nutrients. When using foliar and root pesticides, the pesticides can be applied to different parts of the plant precisely according to the situation. Since the inner flower pot 6 rotates faster than the outer flower pot 6, and the number of inner flower pots 6 is less than the number of outer flower pots 6, when watering with the nozzle 32, the inner flower pots 6 need less watering time than the outer flower pots 6. The working range of the nozzle 32 of the inner flower pots 6 is also smaller than that of the outer flower pots 6. In this way, the innermost flower pots 6 can be watered faster, which improves the watering efficiency.

[0057] The excess water in flowerpot 6 seeps out through the holes at the bottom and falls into the recycling hopper 33, then gathers in the water storage chamber 34. After being filtered by the filter 36, it enters the mixing tank 1 through the return pipe 35 for recycling. The recycling hopper 33 and the water storage chamber 34 are isolated from the output shaft of the drive motor 13 to prevent water vapor from corroding the drive motor 13. In this way, the impurities in the seeping water are filtered by the filter 36 before being recycled, which prevents pipe blockage and saves water resources.

[0058] When the plant grows to the harvestable stage, the growing leaves and the increased height of the plant will obstruct the operator's access to the flowerpot 6 located inside the rotating flower plate 8. At this point, the operator can remove the clamping rod 39 placed on the side clamp 37 of the outer casing 7, slide out the small sleeve 42, and tighten the small sleeve 42 onto the large sleeve 41 through the threaded structure to complete the fixation. Then, hold the non-slip handle 40, hook the hook 43 onto the lower part of the handle on the side of the flowerpot 6, and place the support base 47 against the side of the flowerpot 6 to remove the flowerpot 6 from the side. When the support base 47 is against the side of the flowerpot 6, the sliding sleeve 45 slides on the outside of the support rod 44, and the spring 46 provides cushioning between the support rod 44 and the sliding sleeve 45. After use, the clamping rod 39 can be retracted and put back in its original position. In this way, when the plant grows taller and larger, the flowerpot 6 located in the middle can be easily removed through the auxiliary clamp 12 without damaging the outer plants.

[0059] This concludes the description of the working principle of the device.

[0060] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0061] Although embodiments of the present 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 present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A jasmine plant seedling device, comprising a device body, a stirring box, a stirring rod, a water inlet, a water pump, a water supply pipe, a flowerpot, and a control cabinet, the stirring box is arranged on the left side of the device body, the stirring rod is rotatably arranged above the stirring box, the water inlet is arranged on the left side above the stirring box, the water pump is arranged below the inside of the stirring box, the water supply pipe is arranged on the front side of the water pump and passes through the stirring box to be connected to the device body, the flowerpot is arranged above the device body, and the control cabinet is arranged on the side of the device body and is electrically connected with the device body and the water pump. The device body further comprises a shell, a rotating disc, a light mechanism, a recycling mechanism, a spraying mechanism and an auxiliary clamp.

2. The jasmine plant seedling raising device according to claim 1, characterized in that: The rotating disc further comprises a driving motor, a sun gear, a planet gear a, a planet gear b, a planet gear c, a planet gear d, a ring gear a, a ring gear b, a ring gear c and a basin frame.

3. The jasmine plant seedling raising device according to claim 1, characterized in that: The light mechanism further comprises a rotating shaft, a light bar and a power supply.

4. The jasmine plant seedling raising device according to claim 3, characterized in that: The light bar is inclined at an angle of 0° to 45°.

5. The jasmine plant seedling raising device according to claim 1, characterized in that: The spraying mechanism further comprises a ring pipe, a support, a spraying pipe and a fixing clamp.

6. The jasmine plant seedling raising device according to claim 5, characterized in that: The spraying pipe further comprises a bottom valve, a swan neck pipe and a spray head.

7. The jasmine plantlet raising device according to claim 1, characterized in that: The recycling mechanism further comprises a recycling bucket, a water storage cavity, a water return pipe and a filter.

8. The jasmine plantlet raising device according to claim 1, characterized in that: The auxiliary clamp further comprises a chuck, a base and a clamp rod.

9. The jasmine plantlet raising device according to claim 8, characterized in that: The clamp rod further comprises a non-slip handle, a large sleeve, a small sleeve, a hook, a support rod, a sliding sleeve, a spring and a support base.

Citation Information

Patent Citations

  • Jasmine plant seedling raising device

    CN212212090U