Adjustable phalaenopsis seedling culture vessel

The adjustable Phalaenopsis orchid seedling cultivation container solves the problem of existing cultivation containers not being able to adjust their height, improves the nutrient absorption and light utilization efficiency of Phalaenopsis orchid seedlings, increases the survival rate of seedlings and operational efficiency, and reduces maintenance costs.

CN122250368APending Publication Date: 2026-06-23ZHUOZHOU RIHE AGRI TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZHUOZHOU RIHE AGRI TECH CO LTD
Filing Date
2026-04-30
Publication Date
2026-06-23

AI Technical Summary

Technical Problem

Existing cultivation containers cannot adjust the cultivation height according to the needs of different growth stages of Phalaenopsis seedlings, resulting in uneven nutrient absorption and insufficient light utilization, which affects the growth rate and survival rate of seedlings.

Method used

An adjustable Phalaenopsis orchid seedling cultivation container was designed. Through the combined use of the starting and fixing components, the height of the placement bottle and the mixing of the culture medium can be adjusted. Combined with the spring fixing method, it can be adapted to placement bottles of different sizes, improving the fixing stability and cleaning efficiency.

Benefits of technology

This technology allows for adjustments to the cultivation height based on the differentiated needs of seedlings at different growth stages, improving nutrient and light utilization efficiency, increasing seedling survival rate and operational efficiency, and reducing maintenance costs.

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Abstract

The present application relates to the technical field of culture dish, particularly relates to an adjustable phalaenopsis seedling culture dish, which comprises a placing cylinder, the bottom of the placing cylinder is fixedly connected with a plurality of supporting legs, the inside of the placing cylinder is provided with a starting assembly for processing phalaenopsis seedlings, the starting assembly is provided with a movable rod and a connecting rod, the cooperation of the movable rod and the connecting rod can provide power for adjusting the phalaenopsis seedling culture dish, the starting assembly and the fixed assembly are used in cooperation, the second gear is meshed with the first gear, the linkage of the connecting rod, the connecting bolt and the movable rod, the positioning table and the placing bottle are driven to realize the accurate adjustment of the horizontal height, the culture height can be adjusted according to the differentiated requirements of the culture liquid depth, the light contact angle and the like in different growth stages of phalaenopsis seedlings, the utilization efficiency of nutrients and light of the seedlings is effectively improved, and the cultivation survival rate of phalaenopsis seedlings is improved.
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Description

Technical Field

[0001] This invention relates to the field of petri dish technology, and in particular to an adjustable Phalaenopsis orchid seedling cultivation dish. Background Technology

[0002] Phalaenopsis orchids are perennial epiphytic herbaceous flowers belonging to the genus Phalaenopsis in the Orchidaceae family. Renowned for their elegant and unique flower shape, rich and vibrant colors, and long and stable flowering period, they are often called the "Queen of Orchids." They are one of the most commercially valuable core categories in the global high-end ornamental flower market and a major consumer product in my country's Lunar New Year flower market, widely used in home gardening, indoor landscaping, high-end floral design, and commercial displays. In recent years, with the continuous upgrading of the domestic flower consumption market and the rapid popularization of modern facility horticulture technology, the scale of Phalaenopsis orchid industrial cultivation in my country has continued to expand. China has now become the world's largest producer and consumer of Phalaenopsis orchids. Seedling cultivation, as the core upstream link of the entire Phalaenopsis orchid industry chain, is the core foundation determining the growth quality, flowering performance, market cycle, and added value of finished flowers. Its success rate, seedling consistency, and robustness directly affect the economic benefits and industry development level of subsequent industrial cultivation. Unlike conventional herbaceous ornamental flowers, Phalaenopsis orchids, as typical tropical epiphytic orchids, have… Seedling growth has highly phased characteristics, requiring extremely strict precision in cultivation environment, water and fertilizer management, and light control. The root immersion depth must be strictly controlled to avoid root rot and pathogen infection caused by a high-humidity, enclosed environment. The existing seedling placement structure of cultivation containers is a one-piece fixed design, which cannot adjust the cultivation height according to the needs of different growth stages of Phalaenopsis seedlings. Seedlings have different requirements for the depth of the culture solution and the angle of light contact at different stages such as rooting and leaf expansion. A fixed height can easily lead to uneven nutrient absorption and insufficient light utilization by seedlings, thereby affecting the growth rate and survival rate of seedlings. Summary of the Invention

[0003] To overcome the shortcomings of existing technologies, this invention provides an adjustable Phalaenopsis orchid seedling cultivation container.

[0004] To solve the above technical problems, the present invention provides the following technical solution: an adjustable Phalaenopsis orchid seedling cultivation container, comprising a placement cylinder, with several support legs fixedly connected to the bottom of the placement cylinder. The interior of the placement cylinder is equipped with an activation component for handling Phalaenopsis orchid seedlings. The activation component contains a movable rod and a connecting rod, which, through their cooperation, provide power for adjusting the Phalaenopsis orchid seedling cultivation container. The activation component includes a base plate fixedly connected to the interior of the placement cylinder. Four support columns are fixedly connected to the top of the base plate. A placement block is fixedly connected to the top of each support column. Each placement block has a bearing, and a connecting column is fixedly connected to the inner ring of the bearing in each placement block. Each placement block has its top fixedly connected to a limiting frame. Each connecting post has a connecting rod movably connected to it. Each connecting rod has a fixed connecting bolt at its bottom. Each connecting bolt has a movable rod movably connected to its outer side. Each movable rod has a second toothed ring movably connected to its bottom. Each positioning post has a fixed positioning platform. Each connecting post has a fixed first gear movably connected to its outer side. The limiting frame has a movably connected positioning ring. The positioning ring has a fixed second toothed ring at its bottom, and the second toothed ring meshes with the first gear. The inner wall of the placement cylinder has several bearing frames fixedly connected to it. Each bearing frame has a movable groove for placing a movable ring. The outer side of the movable ring is movably connected to the movable groove of the bearing frame.

[0005] Using the above technical solution, when cultivating Phalaenopsis orchid seedlings, the seedlings are placed inside the placement bottle. The handle is then gripped and rotated. This rotation drives a worm gear, which in turn drives a second gear. The second gear, in turn, drives a corresponding first gear. This first gear, in turn, drives a connecting column. The rotating connecting column lowers a connecting rod, which in turn moves a connecting bolt. This movement of the bolt moves a movable rod, which in turn moves a corresponding positioning column. This movement of the positioning column lowers the positioning platform horizontally, adjusting the placement bottle to a suitable height, at which point the rotation stops. The grip plate is moved, and the culture medium enters the placement bottle through the filter hole. Because the second gear ring meshes with the first gear, the first gear rotates, driving the second gear ring to rotate as well. The rotation of the second gear ring promotes the mixing of the culture medium. When it is necessary to remove the Phalaenopsis orchid culture dish, the grip plate is rotated in the opposite direction. The grip plate drives the worm gear to rotate, and the worm gear, when rotating in the opposite direction, drives the connecting column to rotate, which in turn drives the connecting rod to rise. The rising connecting rod drives the connecting bolt to move, which in turn drives the movable rod to move. The movable rod, in turn, drives the corresponding positioning column to move, which in turn drives the positioning platform to rise horizontally. The rising positioning platform then moves the placement bottle to the top of the equipment, and the placement bottle can then be removed.

[0006] As a preferred embodiment of the present invention, the placement cylinder is internally equipped with a fixing component for cooperating with the starting component. The fixing component contains a spring and a fixing block, which, through their cooperation, secure the Phalaenopsis seedling. The fixing component contains four support columns, symmetrically fixed to the upper surface of the positioning platform, providing stable sliding guidance for the contact columns. This ensures the contact columns can only move horizontally in a straight line, preventing tilting or jamming, and allowing the fixing force to be evenly applied to the outer wall of the placement bottle. Each support column is correspondingly fixedly connected to the top of the positioning platform. The top of the positioning platform has a circular groove for fixing the placement bottle, which is inserted into the groove. The placement bottle has several filter holes for draining the culture medium, evenly distributed on the side wall of the placement bottle to ensure unobstructed flow of the culture medium, meeting the nutrient absorption needs of the seedlings at different growth stages while preventing substrate loss. Each support column has a contact column inserted into it, and each contact column is fixedly connected to a limiting ring. Each contact column is positioned away from its corresponding limiting ring. One end of each ring is fixedly connected to a fixing block. A spring is sleeved on the outside of the contact post. The two ends of the filter hole are fixedly connected to the corresponding bearing post and fixing block, respectively. The fixing block is provided with several positioning grooves for fixing. A worm gear is movably connected to the bottom plate. A second gear is fixedly connected to one of the connecting posts, and the worm gear meshes with the second gear. A grip is fixedly connected to the bottom of the worm gear. A rotating plate is fixedly connected to the outside of the worm gear. A placement platform is fixedly connected to the outside of the rotating plate. The placement cylinder is provided with an annular groove for placing the first toothed ring. The first toothed ring is inserted into the annular groove of the placement cylinder. Several placement plates are fixedly connected to the top of the first toothed ring, and several groove blocks are fixedly connected to each placement plate. The groove blocks are provided with slots for placing the clips. A clip is engaged in the slot of each groove block. A scraper is fixedly connected to each clip, and the scraper is in contact with the inner wall of the placement cylinder. The placement platform is semi-circular. When the placement platform moves to the position corresponding to the first toothed ring, the placement platform is in contact with the first toothed ring.

[0007] With the above technical solution, when Phalaenopsis seedlings need to be cultivated, the placement bottle is placed on the top of the positioning platform. The spring is then compressed by the resistance of the placement bottle, and its compression and rebound cause the contact post to move. The spring is an elastic component suitable for flexible fixing, with moderate elasticity and gentle rebound, providing continuous contact force to the fixing block without causing deformation of the placement bottle due to excessive elasticity. This achieves the flexible fixing of the placement bottle by moving the contact post, which in turn moves the fixing block, fixing the placement bottle to the corresponding position on the top of the positioning platform. When the worm gear rotates, it drives the rotating plate to... The rotating plate drives the placement platform to rotate. When the placement platform rotates to the position corresponding to the first toothed ring, the placement platform engages with the first toothed ring. Then, the placement platform drives the first toothed ring to rotate. When the first toothed ring rotates, it drives the placement plate to rotate. When the placement plate rotates, it drives the corresponding extension columns to rotate. When the extension columns rotate, they drive the groove block to rotate. When the groove block rotates, it drives the retaining strip to rotate. When the retaining strip rotates, it drives the scraper to rotate. When the scraper rotates, it scrapes away the impurities on the inner wall of the placement cylinder. When the scraper needs to be replaced, the groove block and the retaining strip are released from their engagement, and then the retaining strip is removed and the scraper is replaced.

[0008] Compared with the prior art, the beneficial effects that this invention can achieve are: 1. This invention, through the combined use of the starting component and the fixing component, the meshing transmission of the second gear and the first gear, and the linkage of the connecting rod, the connecting bolt and the movable rod, drives the positioning platform and the placement bottle to achieve precise adjustment of the horizontal height. The cultivation height can be adjusted according to the different needs of Phalaenopsis seedlings for the depth of the culture medium and the angle of light contact at different growth stages such as rooting and leaf unfolding, effectively improving the seedlings' efficiency in utilizing nutrients and light, and increasing the survival rate of Phalaenopsis seedlings.

[0009] 2. This invention uses the combination of the starting component and the fixing component. The compression and rebound of the spring causes the fixing block to fit against the placement bottle, thus achieving flexible fixing of the placement bottle. This avoids the problem that traditional snap-fit ​​and binding methods are prone to damage to seedling stems and roots due to improper force. At the same time, it can be adapted to placement bottles of different sizes, improving the versatility of the cultivation container.

[0010] 3. The present invention uses the meshing linkage design of the first gear and the second gear ring to drive the second gear ring to rotate synchronously while adjusting the seedling cultivation height. This can effectively stir the culture medium in the placement cylinder, solve the problem of uneven nutrient distribution caused by easy sedimentation of the culture medium, and allow the seedling roots to contact nutrients evenly, thereby improving the nutrient absorption efficiency of the seedlings.

[0011] 4. By using the starting component and the fixing component together, the present invention can simultaneously complete the mixing of culture medium and the scraping of impurities from the inner wall of the placement tube while adjusting the cultivation height by rotating the worm gear, thereby reducing manual operation steps and improving the overall operation efficiency of Phalaenopsis seedling cultivation.

[0012] 5. The present invention uses a snap-fit ​​assembly structure between the scraper and the groove block to fix the scraper onto the snap-fit ​​strip and engage with the groove block. This avoids the problem of having to replace the entire scraper when the existing integrated design of cleaning accessories is damaged. When the scraper is worn or damaged, the snap-fit ​​strip can be directly removed for individual replacement, effectively reducing the later maintenance cost of the vessel and the cost of cultivation consumables.

[0013] 6. This invention, through its structural design of setting several positioning grooves on the fixing block and the spring elastic contact fixing method, increases the contact friction between the fixing block and the placement bottle, avoids the problem of insufficient stability of the placement bottle and easy tipping, effectively prevents root damage to seedlings caused by tipping of the placement bottle, and ensures the normal growth and development of seedling roots. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the first toothed ring structure of the present invention; Figure 3 This is a schematic diagram of the limiting frame structure of the present invention; Figure 4 This is a schematic diagram of the positioning ring structure of the present invention; Figure 5 This is a schematic diagram of the bottle placement structure of the present invention; Figure 6 This is a schematic diagram of the fixing block structure of the present invention; Figure 7 This is a schematic diagram of the scraper structure of the present invention.

[0015] The components are as follows: 1. Placement cylinder; 2. Support leg; 3. Bearing frame; 4. First gear ring; 5. Base plate; 6. Support column; 7. Placement block; 8. Placement platform; 9. Positioning column; 10. Movable rod; 11. Connecting bolt; 12. Connecting rod; 13. Connecting column; 14. First gear; 15. Positioning platform; 16. Limiting frame; 17. Movable ring; 18. Positioning ring; 19. Second gear ring; 20. Second gear; 21. Worm gear; 22. Grip plate; 23. Rotating plate; 24. Bearing column; 25. Abutting column; 26. Spring; 27. Limiting ring; 28. Fixing block; 29. ​​Positioning groove; 30. Placement plate; 31. Extension column; 32. Groove block; 33. Scraper; 34. Locking strip; 35. Placement bottle; 36. Filter hole. Detailed Implementation

[0016] To make the technical means, creative features, and achieved objectives and effects of this invention easier to understand, the invention is further described below with reference to specific embodiments. However, the following embodiments are merely preferred embodiments of this invention and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described herein without creative effort are all within the protection scope of this invention. Unless otherwise specified, the experimental methods in the following embodiments are conventional methods, and the materials and reagents used in the following embodiments are commercially available unless otherwise specified.

[0017] Example: Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, an adjustable Phalaenopsis orchid seedling cultivation container includes a placement cylinder 1. Several support legs 2 are fixedly connected to the bottom of the placement cylinder 1. An activation component for handling Phalaenopsis orchid seedlings is located inside the placement cylinder 1. The activation component includes a movable rod 10 and a connecting rod 12. The cooperation of the movable rod 10 and the connecting rod 12 provides power for adjusting the Phalaenopsis orchid seedling cultivation container. A base plate 5 is located inside the activation component and is fixedly connected to the inside of the placement cylinder 1. Four support columns 6 are fixedly connected to the top of the base plate 5. A placement block 7 is fixedly connected to the top of each support column 6. Each placement block 7 has a bearing, and a connecting column 13 is fixedly connected to the inner ring of the bearing in each placement block 7. The top of each placement block 7 is fixedly connected to a limiting frame 16. Each connecting post 13 is movably connected to a connecting rod 12. The bottom of each connecting rod 12 is fixed with a connecting bolt 11. The outside of each connecting bolt 11 is movably connected with a movable rod 10. The bottom of each movable rod 10 is movably connected with a second toothed ring 19. Each positioning post 9 is fixedly connected with a positioning platform 15. The outside of each connecting post 13 is fixedly connected with a first gear 14. The outside of the limiting frame 16 is movably connected with a positioning ring 18. The bottom of the positioning ring 18 is fixedly connected with a second toothed ring 19, and the second toothed ring 19 meshes with the first gear 14. The inner wall of the placement cylinder 1 is correspondingly fixedly connected with several bearing frames 3. Each bearing frame 3 is provided with a movable groove for placing a movable ring 17. The outside of the movable ring 17 is correspondingly movably connected in the movable groove of the bearing frame 3. like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, when cultivating Phalaenopsis orchid seedlings, the seedlings are placed inside the placement bottle 35. The grip plate 22 is then held and rotated. The rotation of the grip plate 22 drives the worm gear 21, which in turn drives the second gear 20. The second gear 20, in turn, drives the corresponding first gear 14. The first gear 14, in turn, drives the connecting column 13. The connecting column 13, in turn, causes the connecting rod 12 to descend. The descending connecting rod 12 moves the connecting bolt 11, which in turn moves the movable rod 10. The movable rod 10, in turn, moves the corresponding positioning column 9. The moving positioning column 9, in turn, causes the positioning platform 15 to descend horizontally. The descending positioning platform 15 then adjusts the placement bottle 35 to a suitable height. Finally, the grip plate 22 is stopped from rotating. The culture medium enters the interior of the placement bottle 35 through the filter hole 36. Because the second toothed ring 19 meshes with the first gear 14, the first gear 14 rotates, causing the second toothed ring 19 to rotate. The rotation of the second toothed ring 19 promotes the mixing of the culture medium. When it is necessary to remove the Phalaenopsis orchid culture dish, the grip plate 22 is rotated in the opposite direction. The grip plate 22 drives the worm gear 21 to rotate. When the worm gear 21 rotates in the opposite direction, the connecting column 13 rotates, causing the connecting rod 12 to rise. When the connecting rod 12 rises, it causes the connecting bolt 11 to move. When the connecting bolt 11 moves, it causes the moving rod 10 to move. When the moving rod 10 moves, it causes the corresponding positioning column 9 to move. When the positioning column 9 moves, it causes the positioning platform 15 to rise horizontally. When the positioning platform 15 rises, it moves the placement bottle 35 to the top of the equipment, and then the placement bottle 35 is removed.

[0018] like Figure 1 , Figure 2 , Figure 5 , Figure 6 and Figure 7As shown, the placement cylinder 1 has a fixing component inside for cooperating with the starting component. The fixing component contains a spring 26 and a fixing block 28. The spring 26 and fixing block 28 work together to fix the Phalaenopsis seedling. The fixing component contains four support columns 24, which are symmetrically fixed to the upper surface of the positioning platform 15. These support columns provide stable sliding guidance for the contact columns 25, ensuring that the contact columns 25 can only move horizontally in a straight line without tilting or jamming. This allows the fixing force to be evenly applied to the outer wall of the placement bottle 35. Each support column 24 is correspondingly and fixedly connected to the top of the positioning platform 15. The top of the positioning platform 15 is provided with a circular groove for fixing the placement bottle 35. The placement bottle 35 is inserted into the circular groove of the positioning platform 15, and the placement bottle 35 is provided with several filter holes 36 for draining the culture medium. The filter holes 36 are evenly distributed on the side wall of the placement bottle 35 to ensure smooth flow of the culture medium, meet the nutrient absorption needs of seedlings at different growth stages, and prevent substrate loss. Each support column 24 is inserted with a contact column 25, and each contact column 25 is fixedly connected with a limiting ring 27. A fixing block is fixedly connected to the end of each contact column 25 away from the corresponding limiting ring 27. 28. A spring 26 is sleeved on the outside of the contact post 25, and the two ends of the filter hole 36 are fixedly connected to the corresponding bearing post 24 and the fixing block 28 respectively. The fixing block 28 is provided with several positioning grooves 29 for fixing. A worm gear 21 is movably connected to the base plate 5. A second gear 20 is fixedly connected to one of the connecting posts 13, and the worm gear 21 meshes with the second gear 20. A grip plate 22 is fixedly connected to the bottom of the worm gear 21. A rotating plate 23 is fixedly connected to the outside of the worm gear 21. A placement platform 8 is fixedly connected to the outside of the rotating plate 23. The placement cylinder 1 is provided with a first toothed ring 4 for placement. The annular groove of the placement cylinder 1 is into which a first toothed ring 4 is inserted. Several placement plates 30 are fixedly connected to the top of the first toothed ring 4. Several grooved blocks 32 are fixedly connected to each placement plate 30. The grooved blocks 32 are provided with slots for placing the clips 34. Each grooved block 32 is fitted with a clip 34. Each clip 34 is fixedly connected with a scraper 33. The scraper 33 is in contact with the inner wall of the placement cylinder 1. The placement platform 8 is semi-arc. When the placement platform 8 moves to the position corresponding to the first toothed ring 4, the placement platform 8 is in contact with the first toothed ring 4. like Figure 1 , Figure 2 , Figure 5 , Figure 6 and Figure 7As shown, when Phalaenopsis seedlings need to be cultivated, the placement bottle 35 is placed on the top of the positioning platform 15. The spring 26 is then compressed by the resistance of the placement bottle 35, and its compression and rebound cause the contact post 25 to move. The spring 26 is an elastic component adapted to the flexible fixing requirements, with moderate elasticity and gentle rebound. It provides continuous contact force to the fixing block 28 without causing deformation of the placement bottle 35 due to excessive elasticity, thus achieving flexible fixing of the placement bottle 35. When the contact post 25 moves, it drives the fixing block 28 to move, fixing the placement bottle 35 to the corresponding position on the top of the positioning platform 15. When the worm gear 21 rotates, it drives the rotating plate 23 to rotate. 23 drives the placement platform 8 to rotate. When the placement platform 8 rotates to the position corresponding to the first toothed ring 4, the placement platform 8 meshes with the first toothed ring 4. Then, the placement platform 8 drives the first toothed ring 4 to rotate. When the first toothed ring 4 rotates, it drives the placement plate 30 to rotate. When the placement plate 30 rotates, it drives the corresponding extension columns 31 to rotate. When the extension columns 31 rotate, they drive the groove block 32 to rotate. When the groove block 32 rotates, it drives the retaining strip 34 to rotate. When the retaining strip 34 rotates, it drives the scraper 33 to rotate. When the scraper 33 rotates, it scrapes the impurities on the inner wall of the placement cylinder 1. When the scraper 33 needs to be replaced, the retaining strip 34 is disengaged from the groove block 32 and the retaining strip 34 is removed and the scraper 33 is replaced.

[0019] Working principle: like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, when Phalaenopsis orchid seedlings need to be cultivated, the seedlings are placed inside the placement bottle 35. The placement process follows the growth characteristics of Phalaenopsis orchids, ensuring the roots are spread out and undamaged, laying the foundation for subsequent growth. Then, the grip plate 22 is held and rotated. The rotation of the grip plate 22 drives the worm gear 21, which in turn drives the second gear 20. The second gear 20, in turn, drives the corresponding first gear 14. The first gear 14, in turn, drives the connecting column 13. The connecting column 13, in turn, causes the connecting rod 12 to descend. The descending connecting rod 12 moves the connecting bolt 11, which in turn moves the movable rod 10. The movable rod 10, in turn, moves the corresponding positioning column 9. The moving positioning column 9, in turn, causes the positioning platform 15 to descend horizontally. The descending positioning platform 15 then adjusts the placement bottle 35. When the orchid culture dish is at a suitable height, the grip plate 22 is stopped rotating. The culture medium then enters the interior of the placement bottle 35 through the filter hole 36 on the placement bottle 35. Because the second toothed ring 19 meshes with the first gear 14, the first gear 14 drives the second toothed ring 19 to rotate when it rotates. The second toothed ring 19 promotes the mixing of the culture medium when it rotates. When it is necessary to remove the Phalaenopsis orchid culture dish, the grip plate 22 is rotated in the opposite direction. The grip plate 22 drives the worm gear 21 to rotate. When the worm gear 21 rotates in the opposite direction, the connecting column 13 drives the connecting rod 12 to rise when it rotates. When the connecting rod 12 rises, it drives the connecting bolt 11 to move. When the connecting bolt 11 moves, it drives the moving rod 10 to move. When the moving rod 10 moves, it drives the corresponding positioning column 9 to move. When the positioning column 9 moves, it drives the positioning platform 15 to rise horizontally. When the positioning platform 15 rises, it moves the placement bottle 35 to the top of the equipment, and then the placement bottle 35 is removed. like Figure 1 , Figure 2 , Figure 5 , Figure 6 and Figure 7As shown, when Phalaenopsis seedlings need to be cultivated, the placement bottle 35 is placed on the top of the positioning platform 15. The spring 26 is then compressed by the resistance of the placement bottle 35. The spring 26 is an elastic component adapted to the flexible fixing requirements, with moderate elasticity and gentle rebound. It provides continuous contact force to the fixing block 28 without causing excessive compression or deformation of the placement bottle 35, thus achieving flexible fixing of the placement bottle 35. The compression and rebound of the spring 26 then moves the contact post 25, which in turn moves the fixing block 28, fixing the placement bottle 35 to the corresponding position on the top of the positioning platform 15. When the worm gear 21 rotates, it drives the rotating plate 23 to rotate. 3. The placement platform 8 is rotated. When the placement platform 8 rotates to the position corresponding to the first toothed ring 4, the placement platform 8 engages with the first toothed ring 4. Then, the placement platform 8 drives the first toothed ring 4 to rotate. When the first toothed ring 4 rotates, it drives the placement plate 30 to rotate. When the placement plate 30 rotates, it drives the corresponding extension columns 31 to rotate. When the extension columns 31 rotate, they drive the groove block 32 to rotate. When the groove block 32 rotates, it drives the retaining strip 34 to rotate. When the retaining strip 34 rotates, it drives the scraper 33 to rotate. When the scraper 33 rotates, it scrapes the impurities on the inner wall of the placement cylinder 1. When the scraper 33 needs to be replaced, the retaining strip 34 is disengaged from the groove block 32 and the retaining strip 34 is removed and the scraper 33 is replaced.

[0020] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention.

Claims

1. An adjustable Phalaenopsis orchid seedling cultivation container, comprising a placement tube (1), the bottom of which is fixedly connected to several support legs (2), characterized in that, The placement tube (1) is equipped with a starting component for processing Phalaenopsis seedlings. The starting component is equipped with a movable rod (10) and a connecting rod (12). The movable rod (10) and the connecting rod (12) work together to provide power for adjusting the Phalaenopsis seedling cultivation container. The placement tube (1) is equipped with a fixing component for cooperating with the starting component. The fixing component is equipped with a spring (26) and a fixing block (28). The Phalaenopsis seedlings can be fixed by the cooperation of the spring (26) and the fixing block (28).

2. The adjustable Phalaenopsis orchid seedling cultivation container according to claim 1, characterized in that, The starting assembly has a base plate (5) which is fixedly connected to the inside of the placement cylinder (1). The top of the base plate (5) is fixedly connected to four support columns (6). The top of each support column (6) is fixedly connected to a placement block (7). Each placement block (7) is provided with a bearing. The inner ring of the bearing of each placement block (7) is fixedly connected to a connecting column (13). The top of each placement block (7) is fixedly connected to a limiting frame (16). Each connecting column (13) is movably connected to a connecting rod (12). The bottom of each connecting rod (12) is fixedly connected to a connecting bolt (11). The outside of each connecting bolt (11) is movably connected to a movable rod (10). The bottom of each movable rod (10) is movably connected to a second toothed ring (19). Each positioning column (9) is fixedly connected to a positioning platform (15).

3. The adjustable Phalaenopsis seedling cultivation container according to claim 2, characterized in that, Each of the connecting columns (13) is fixedly connected to a first gear (14) on its outer side. A positioning ring (18) is movably connected to the outer side of the limiting frame (16). A second toothed ring (19) is fixedly connected to the bottom of the positioning ring (18), and the second toothed ring (19) meshes with the first gear (14). A number of bearing frames (3) are fixedly connected to the inner wall of the placement cylinder (1). Each bearing frame (3) is provided with a movable groove for placing a movable ring (17). The outer side of the movable ring (17) is movably connected to the movable groove of the bearing frame (3).

4. The adjustable Phalaenopsis seedling cultivation container according to claim 3, characterized in that, The fixing assembly is provided with four support columns (24), each support column (24) is fixedly connected to the top of the positioning platform (15), the top of the positioning platform (15) is provided with a circular groove for fixing the placement bottle (35), the placement bottle (35) is inserted into the circular groove of the positioning platform (15), and the placement bottle (35) is provided with several filter holes (36) for draining culture medium. Each support column (24) is inserted with a contact column (25), each contact column (25) is fixedly connected with a limiting ring (27), and a fixing block (28) is fixedly connected to the end of each contact column (25) away from the corresponding limiting ring (27). A spring (26) is sleeved on the outside of the contact column (25), and the two ends of the filter hole (36) are fixedly connected to the corresponding support column (24) and the fixing block (28) respectively. The fixing block (28) is provided with several positioning grooves (29) for fixing.

5. An adjustable Phalaenopsis orchid seedling cultivation container according to claim 4, characterized in that, A worm gear (21) is movably connected to the base plate (5). A second gear (20) is fixedly connected to one of the connecting columns (13), and the worm gear (21) meshes with the second gear (20). A grip plate (22) is fixedly connected to the bottom of the worm gear (21), and a rotating plate (23) is fixedly connected to the outside of the worm gear (21). A placement platform (8) is fixedly connected to the outside of the rotating plate (23).

6. An adjustable Phalaenopsis orchid seedling cultivation container according to claim 5, characterized in that, The placement cylinder (1) is provided with an annular groove for placing the first toothed ring (4). The first toothed ring (4) is inserted into the annular groove of the placement cylinder (1). Several placement plates (30) are fixedly connected to the top of the first toothed ring (4). Several groove blocks (32) are fixedly connected to each placement plate (30). The groove blocks (32) are provided with slots for placing the card strips (34). A card strip (34) is locked in the slot of each groove block (32). A scraper (33) is fixedly connected to each card strip (34). The scraper (33) is in contact with the inner wall of the placement cylinder (1).

7. An adjustable Phalaenopsis orchid seedling cultivation container according to claim 1, characterized in that, The placement platform (8) is semi-circular. When the placement platform (8) moves to the position corresponding to the first toothed ring (4), the placement platform (8) and the first toothed ring (4) fit together.