Batch transplanting device for micro-landscape plants
By designing a batch transplanting device for micro-landscape plants, a mesh structure is formed using springs and clamps to support the planting. The springs are stretched and cut through a drive device and connectors, which solves the problems of cumbersome operation and root damage in the existing technology. This achieves efficient seedling cultivation and transplanting operations while maintaining the natural integrity of the landscape.
Patent Information
- Application Number
- CN202511721049.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-21
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2045-11-21
AI Technical Summary
Existing methods for mass planting of micro-landscape plants are cumbersome, time-consuming, labor-intensive, and prone to damaging the root system, or the substrate structure is difficult to degrade naturally, affecting the natural integrity of the landscape.
Design a batch transplanting device that includes a horizontally arranged culture tank, a support assembly, and a cutting device. The device uses springs and clamps to form a mesh structure to support the planting, and uses a drive device and connectors to stretch and cut the springs, thus achieving seamless seedling cultivation and transplanting operations.
It enables efficient mass seedling cultivation and transplantation of micro-landscape plants, reduces root damage, and the device is reusable without affecting the naturalness of the landscape.
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Figure CN121369110A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of plant cultivation, and in particular, to a batch transplanting device for micro-landscape plants. BACKGROUND
[0002] Micro-landscape plants, represented by mosses and ferns, have both landscaping practicality and landscape ornamental value. They are not only the core materials for creating micro-landscapes, but also widely used in large-scale landscape ground layout. With their small size and strong adaptability, they can quickly create a natural and harmonious landscape atmosphere. Unlike conventional plants and flowers that are planted individually, micro-landscape plants grow in clusters in the form of sheets. Their planting mode also follows this characteristic, and they are usually cultivated in a batch sheet form. After the plants grow stably, they are transplanted in batches to meet various landscaping needs.
[0003] However, the current mainstream batch planting method has obvious drawbacks. One is to plant directly on the ground. This method can meet the basic growth needs of plants, but manual excavation is required during subsequent transplantation, which is not only time-consuming and labor-intensive, but also easy to cause plant damage during excavation, affecting the survival rate of transplantation. Another is to use a special planting plate erected on the ground. This type of planting plate usually has a substrate structure such as a multi-well plate and a support net to fix and support micro-landscape plants growing in sheets. Although this method solves the problem of clutter caused by ground planting, it creates new problems. During growth, the roots of micro-landscape plants naturally intertwine and gradually penetrate the pores of the substrate to absorb nutrients. If the plants are forcibly removed from the substrate during transplantation, the intertwined roots are likely to be irreversibly damaged, making it difficult for the plants to survive after transplantation. If the substrate structure such as the support net is retained to protect the roots, the soft substrate made of high-molecular materials cannot be naturally degraded and will remain in the landscape soil for a long time, affecting soil permeability and damaging the natural integrity of the landscape, causing difficulties in subsequent landscape maintenance. Therefore, a device for batch transplantation of micro-landscape plants can be designed. SUMMARY
[0004] The present application relates to the technical field of plant cultivation, and in particular, to a batch transplanting device for micro-landscape plants.
[0005] The application achieves the above-mentioned technical effects through the following technical scheme: the batch transplanting device for micro-landscape plants of the application comprises a culture tank arranged horizontally, a support assembly arranged horizontally in the culture tank, and a cutting device arranged on the culture tank; the support assembly comprises a plurality of springs arranged horizontally and parallel to each other, a first connecting plate connected to one end of each of the plurality of springs, a second connecting plate connected to the other end of each of the plurality of springs, and a plurality of lower clamping plates arranged horizontally between the culture tank and the springs; the length direction of the spring is parallel to the length direction of the culture tank, and the length direction of the spring is perpendicular to the length direction of the lower clamping plate; the cutting device comprises a pair of upper clamping plates arranged horizontally above the springs, a connecting piece connecting the upper clamping plate and the lower clamping plate, and a driving device for driving one of the connecting pieces to move along the length direction of the culture tank.
[0006] Further, the lower clamping plate is provided with a lower connecting block at both ends, the lower connecting block is provided with a lower insertion hole in the vertical direction; the upper clamping plate is provided with an upper connecting block at both ends, the upper connecting block is provided with an upper insertion hole in the vertical direction.
[0007] Further, the connecting piece comprises a connecting rod arranged vertically, a bolt hole horizontally arranged on the upper end of the connecting rod, a bolt rod inserted into the bolt hole, and a counterweight arranged at the lower end of the connecting rod; the connecting rod is arranged through the lower insertion hole and the upper insertion hole at the same time, the bolt rod is arranged above the upper connecting block, and the counterweight is arranged below the lower connecting block.
[0008] Further, the driving device comprises a lower sliding rail arranged on the lower surface of the culture tank, a lower sliding block slidingly arranged in the lower sliding rail, a driving rod connected to the lower sliding block, a pair of driving blocks arranged at both ends of the driving rod respectively, and a connecting hole arranged in the vertical direction of the driving block; the counterweight is arranged directly below the driving block, and the connecting rod is arranged through the connecting hole.
[0009] Further, the lower sliding block is provided with a linear motor, and the linear motor is used to drive the lower sliding block to move along the lower sliding rail.
[0010] Further, the cutting device further comprises a support plate arranged horizontally above the upper clamping plate, a support frame used to support the support plate, and a pair of telescopic assemblies slidingly connected to the support plate; one of the telescopic assemblies is fixedly connected to one of the upper clamping plates.
[0011] Further, the telescopic assembly comprises a slide plate horizontally arranged at the lower side of the support plate, a pair of telescopic rods vertically arranged at the lower side of the slide plate respectively at two ends, and a tension spring sleeved on the telescopic rods; the lower end of the telescopic rod is fixedly connected with the upper clamping plate, the upper end of the tension spring is fixedly connected with the slide plate, and the lower end of the tension spring is fixedly connected with the upper clamping plate.
[0012] Further, the upper slide rail is arranged at the lower side of the support plate, and the upper sliding block is arranged at the upper side of the slide plate.
[0013] Further, the cutting device further comprises a transfer plate, the length of the transfer plate is greater than the width of the culture tank, the length direction of the transfer plate is perpendicular to the length direction of the culture tank, the transfer plate is insertably arranged between the culture tank and the spring, a plurality of clamping grooves are arranged at the part of the transfer plate below the spring, the clamping grooves are parallel to each other, the length direction of the clamping grooves is parallel to the length direction of the spring, the interval between adjacent clamping grooves is equal to the interval between adjacent springs, and the spring can be clamped in the clamping groove after being elongated.
[0014] Further, the spring is made of super-elastic material.
[0015] The technical scheme of the present application has at least the following advantages and beneficial effects: the batch transplanting device for micro-landscape plants of the present application has the following advantages: when used, the support assembly composed of springs and lower clamping plates is laid in the culture tank, and a mesh-like structure is formed by the helical structure of the springs and the mutual approach of the springs, and then the lower clamping plates support the mesh-like structure, and then the coarse sand, fine sand, soil particles, etc. are laid on the porous structure support assembly composed of springs (the gap between the springs is smaller than the diameter of the sand particles such as coarse sand), the plant seeds are mixed in the soil particles, and the seeds can grow and germinate by regularly spraying water and nutrient solution and adjusting the temperature and humidity, etc. After the seedling raising is completed, the root system of the plants automatically forms a three-dimensional network structure to embed the sand and soil network, forming a long strip-shaped sheet structure as a whole, which is called a transplanting sheet. When transplanting is needed, the transplanting sheet can be cut into the required size using the cutting device. The specific operation is as follows: the upper clamping plate is lowered, the springs are clamped by the upper clamping plate and the lower clamping plate (the upper clamping plate cuts the transplanting sheet through the plants and sand), then the upper clamping plate and the lower clamping plate are temporarily fixed by the connecting piece, then one of the connecting pieces is driven to move by the driving device, and the other connecting piece is temporarily fixed on the culture tank, so that the springs between the two connecting pieces are elongated, and the elongated springs are close to a straight line (the springs can recover), at this time, the springs can be easily taken out of the transplanting sheet, and then the transplanting sheet without the springs can be taken out, so that the position of the upper clamping plate and the lower clamping plate can be moved according to the needs, so that the transplanting sheet of the required size can be cut, and during the cutting process, new sand, plant seeds, etc. can be laid on the cut springs, so that a new round of plant seedling raising operation can be carried out, and thus the whole seedling raising and transplanting operation can be continuous and seamless. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 A structure schematic view of a state of the batch transplanting device for micro-landscape plants provided by the embodiment of the present application is shown in the figure. Figure 2 A structure schematic view of another view of the batch transplanting device for micro-landscape plants is shown in the figure. Figure 1 A structure schematic view of another view of the batch transplanting device for micro-landscape plants is shown in the figure. Figure 3 A structure schematic view of a state of the batch transplanting device for micro-landscape plants provided by the embodiment of the present application is shown in the figure. Figure 4 A structure schematic view of a state of the batch transplanting device for micro-landscape plants provided by the embodiment of the present application is shown in the figure. Figure 5 A structure schematic view of the culture tank part provided by the embodiment of the present application is shown in the figure. Figure 6 A structure schematic view of the telescopic assembly part provided by the embodiment of the present application is shown in the figure. Figure 7A structural schematic diagram of a spring provided for an embodiment of the present application is shown in the figure. Figure 8 A structural schematic diagram of a transfer plate provided for an embodiment of the present application is shown in the figure.
[0017] Figure: 10-culture tank, 20-support assembly, 21-spring, 22-first connecting plate, 23-second connecting plate, 24-lower clamping plate, 241-lower connecting block, 30-cutting device, 31-upper clamping plate, 311-upper connecting block, 32-connecting piece, 321-connecting rod, 322-bolt rod, 323-counterweight, 33-driving device, 331-lower sliding rail, 332-lower sliding block, 333-driving rod, 334-driving block, 34-supporting plate, 35-bracket, 36-telescopic assembly, 361-sliding plate, 362-tension spring, 363-telescopic rod, 364-upper sliding block, 365-upper sliding rail, 37-transfer plate, 38-clamping groove. DETAILED DESCRIPTION
[0018] EMBODIMENT The present application is further described below in conjunction with specific embodiments, such as the accompanying drawings, which illustrate but do not limit the present application. Figure 1 -APPENDIX Figure 8As shown, the batch transplanting device for micro-landscape plants of the embodiment comprises a culture tank 10 arranged horizontally, a support assembly 20 arranged horizontally in the culture tank 10, and a cutting device 30 arranged on the culture tank 10; the support assembly 20 comprises a plurality of springs 21 arranged horizontally and in parallel, a first connecting plate 22 connected to one end of the plurality of springs 21, a second connecting plate 23 connected to the other end of the plurality of springs 21, and a plurality of lower clamping plates 24 arranged horizontally between the culture tank 10 and the springs 21; the length direction of the springs 21 is parallel to the length direction of the culture tank 10, and the length direction of the springs 21 is perpendicular to the length direction of the lower clamping plates 24; the cutting device 30 comprises a pair of upper clamping plates 31 arranged horizontally above the springs 21, connecting members 32 connecting the upper clamping plates 31 and the lower clamping plates 24, and a driving device 33 driving one of the connecting members 32 to move along the length direction of the culture tank 10. Specifically, in use, the support assembly 20 composed of the springs 21 and the lower clamping plates 24 is first laid in the culture tank 10, and a mesh-like structure is formed by the helical structure of the springs 21 and the mutual approach, and then the mesh-like structure is supported by the lower clamping plates 24, and then coarse sand, fine sand, soil particles, etc. are laid on the porous structure of the support assembly 20 composed of the springs 21 (the gap between the springs 21 is smaller than the diameter of the sand particles, and even if some particles pass through the springs 21, they will directly fall into the culture tank 10 and will not affect the cultivation process), the plant seeds are mixed in the soil particles, and the seeds are grown and germinated by regularly spraying water and nutrient solution, and adjusting temperature and humidity, etc. After the seedling raising is completed, the root system of the plants will automatically form a three-dimensional network structure to network the sand and soil, forming a long strip-shaped sheet structure as a whole, which is called a transplanting sheet. When transplanting is needed, the cutting device 30 can be used to cut the transplanting sheet into the required size. The specific operation is to lower the upper clamping plates 31 to hold the springs 21 by the upper clamping plates 31 and the lower clamping plates 24 (the upper clamping plates 31 will cut the transplanting sheet by passing through the plants and sand), then temporarily fix the upper clamping plates 31 and the lower clamping plates 24 by the connecting members 32, then drive one of the connecting members 32 to move by the driving device 33, and the other connecting member 32 is temporarily fixed on the culture tank 10, so that the springs 21 between the two connecting members 32 are elongated, and the elongated springs 21 are close to straight lines (the springs 21 can recover), at this time, the springs 21 can be easily taken out of the transplanting sheet, and then the transplanting sheet without the springs 21 can be taken away, so that the position of the upper clamping plates 31 and the lower clamping plates 24 can be moved as needed, so that the transplanting sheet of the required size can be cut, and during the cutting process, the springs 21 that have been cut can be laid with new sand, plant seeds, etc., and a new round of plant seedling raising operation can be performed, so that the whole seedling raising and transplanting operation can be continuous and seamless.
[0019] The lower clamping plate 24 in the embodiment is provided with a lower connecting block 241 at both ends, and the lower connecting block 241 is provided with a lower insertion hole in the vertical direction; the upper clamping plate 31 is provided with an upper connecting block 311 at both ends, and the upper connecting block 311 is provided with an upper insertion hole in the vertical direction. The connecting piece 32 comprises a connecting rod 321 arranged vertically, a bolt hole horizontally arranged at the upper end of the connecting rod 321, a bolt rod 322 inserted into the bolt hole, and a counterweight 323 arranged at the lower end of the connecting rod 321; the connecting rod 321 is arranged through the lower insertion hole and the upper insertion hole at the same time, the bolt rod 322 is arranged above the upper connecting block 311, and the counterweight 323 is arranged below the lower connecting block 241. Specifically, after the connecting rod 321 is arranged through the lower insertion hole and the upper insertion hole from bottom to top at the same time, the bolt rod 322 is inserted into the bolt hole, at this time, the upper clamping plate 31 can be pressed downward under the action of the gravity of the counterweight 323, so that the upper clamping plate 31 is pressed on the spring 21 after passing through the plants and the sandstone (manual assistance can also be used for pressing downward), wherein the lower clamping plate 24 can also be fixed on the side wall of the culture tank 10 through the lower connecting block 241 and the lower insertion hole (connection can be achieved through bolts, or through a pin shaft, or directly fixed by manual holding). When the connecting rod 321 is used to connect the upper clamping plate 31 and the lower clamping plate 24, one lower clamping plate 24 and one upper clamping plate 31 form a group, at this time, the driving device 33 needs to be connected with one of the upper clamping plate 31 / lower clamping plate 24 and drive it to move, and the other upper clamping plate 31 / lower clamping plate 24 needs to be fixed on the culture tank 10 (the fixing method can be referred to the above).
[0020] The driving device 33 in the embodiment comprises a lower sliding rail 331 arranged on the lower surface of the culture tank 10, a lower sliding block 332 slidingly arranged in the lower sliding rail 331, a driving rod 333 connected with the lower sliding block 332, a pair of driving blocks 334 respectively arranged at both ends of the driving rod 333, and a connecting hole arranged in the driving block 334 in the vertical direction; the counterweight 323 is arranged directly below the driving block 334, and the connecting rod 321 is arranged through the connecting hole. The lower sliding block 332 is provided with a linear motor, which is used to drive the lower sliding block 332 to move along the lower sliding rail 331. Specifically, the linear motor can drive the lower sliding block 332 to move reciprocatingly in the lower sliding rail 331, wherein the structure of a ball screw can also be used, but for a culture tank 10 with a large length, the ball screw may not be suitable, and a traction rope can also be used to drive the lower sliding block 332 to move in cooperation with the motor. The lower sliding block 332 drives the driving blocks 334 at both ends to move through the driving rod 333, so as to pull the connecting rod 321, the lower connecting block 241, the lower clamping plate 24, the upper connecting block 311, and the upper clamping plate 31 to move synchronously. The driving device 33 can also not be used, and the upper clamping plate 31 / lower clamping plate 24 can be directly pulled to move manually.
[0021] The cutting device 30 in the embodiment further comprises a support plate 34 horizontally arranged above the upper clamping plate 31, a support 35 for supporting the support plate 34, and a pair of telescopic assemblies 36 in sliding connection with the support plate 34; one telescopic assembly 36 is fixedly connected with one upper clamping plate 31. Specifically, the support plate 34 and the telescopic assembly 36 can support the upper clamping plate 31, so that the upper clamping plate 31 can be hung above the culture tank 10 when not in use.
[0022] The telescopic assembly 36 in the embodiment comprises a sliding plate 361 horizontally arranged on the lower side of the support plate 34, a pair of telescopic rods 363 vertically arranged on the lower sides of the two ends of the sliding plate 361 respectively, and a tension spring 362 sleeved on the telescopic rod 363; the lower end of the telescopic rod 363 is fixedly connected with the upper clamping plate 31, the upper end of the tension spring 362 is fixedly connected with the sliding plate 361, and the lower end of the tension spring 362 is fixedly connected with the upper clamping plate 31. Specifically, the telescopic rod 363 and the tension spring 362 can pull the upper clamping plate 31, when the connecting rod 321 is connected with the upper connecting block 311, the tension spring 362 and the telescopic rod 363 are elongated, and when the connecting rod 321 is removed from the upper connecting block 311, the tension spring 362 pulls the upper clamping plate 31 back to a high place.
[0023] The lower side of the support plate 34 in the embodiment is provided with an upper sliding rail 365, and the upper side of the sliding plate 361 is provided with an upper sliding block 364; the upper sliding block 364 is slidingly arranged in the upper sliding rail 365. Specifically, the upper sliding rail 365 and the upper sliding block 364 enable the upper clamping plate 31 to be kept in sliding connection with the support plate 34 at all times through the telescopic assembly 36.
[0024] The cutting device 30 in the embodiment further comprises a transfer plate 37, the length of the transfer plate 37 is greater than the width of the culture tank 10; the length direction of the transfer plate 37 is perpendicular to the length direction of the culture tank 10; the transfer plate 37 can be inserted between the culture tank 10 and the spring 21, the part of the transfer plate 37 below the spring 21 is provided with a plurality of clamping grooves 38, the plurality of clamping grooves 38 are parallel to each other, the length direction of the clamping groove 38 is parallel to the length direction of the spring 21, the spacing between adjacent clamping grooves 38 is equal to the spacing between adjacent springs 21, and the spring 21 can be clamped in the clamping groove 38 after being elongated. Specifically, when two groups of upper clamping plates 31 / lower clamping plates 24 are used to elongate the springs 21 located therein, the transfer plate 37 can be inserted between the springs 21 and the culture tank 10 (as shown in FIG. 12), and then the transfer plate 37 is moved upward, so that the springs 21 are clamped into the clamping grooves 38, thereby forcibly pulling the springs 21 out of the grafts, and then the grafts can be pushed to the side of the transfer plate 37 without the clamping grooves 38, and finally the transfer plate 37 carrying the grafts can be taken away. Figure 3
[0025] The spring 21 in the embodiment is made of super-elastic material. Specifically, the spring 21 made of super-elastic material can return to the previous shape after being stretched to be close to a straight line.
[0026] In summary, the batch transplanting device for micro-landscape plants in the embodiment is used to first lay the support assembly 20 composed of the spring 21 and the lower clamping plate 24 in the culture tank 10, form a mesh-like structure through the spiral structure of the spring 21 and the mutual approach, support the mesh-like structure through the lower clamping plate 24, then lay the coarse sand, fine sand, soil particles, etc. on the porous structure support assembly 20 composed of the spring 21 (the gap between the springs 21 is smaller than the diameter of the sandstone particles such as coarse sand), mix the plant seeds in the soil particles, and make the seeds grow and germinate through regular water spraying, nutrient solution, and the regulation of temperature and humidity parameters, etc. After the seedling raising is completed, the root system of the plants will automatically form a three-dimensional network structure to hold the sandstone and soil network therein, forming a long strip-shaped sheet structure as a whole, which is called a transplanting sheet. When transplanting is needed, the transplanting sheet can be cut into the required size using the cutting device 30. The specific operation is to first lower the upper clamping plate 31 to hold the spring 21 through the upper clamping plate 31 and the lower clamping plate 24 (the upper clamping plate 31 will cut the transplanting sheet through the plants and sandstone), then temporarily fix the upper clamping plate 31 and the lower clamping plate 24 using the connecting piece 32, then drive one of the connecting pieces 32 to move while the other connecting piece 32 is temporarily fixed on the culture tank 10, so that the spring 21 between the two connecting pieces 32 is elongated, and the elongated spring 21 is close to a straight line (the spring 21 can recover), at this time, the spring 21 can be easily taken out of the transplanting sheet, and then the transplanting sheet without the spring 21 can be taken out, so that the position of the upper clamping plate 31 and the lower clamping plate 24 can be moved according to the needs, so that the transplanting sheet of the required size can be cut, and during the cutting process, the spring 21 that has been cut can be laid with new sandstone, plant seeds, etc., so that a new round of plant seedling raising operation can be performed, and thus the whole seedling raising and transplanting operation can be continuous and seamless.
[0027] The above only describes the preferred embodiments of the present application and is not intended to limit the present application. Those skilled in the art can make various modifications and changes to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A device for mass transplanting of plants in micro-landscapes, characterized in that: It includes a horizontally arranged culture tank (10), a support assembly (20) horizontally arranged in the culture tank (10), and a cutting device (30) provided on the culture tank (10); The support assembly (20) includes a plurality of horizontally and parallelly arranged springs (21), a first connecting plate (22) connected to one end of the plurality of springs (21), a second connecting plate (23) connected to the other end of the plurality of springs (21), and a plurality of lower clamping plates (24) horizontally arranged between the culture tank (10) and the springs (21); the length direction of the springs (21) is parallel to the length direction of the culture tank (10), and the length direction of the springs (21) is perpendicular to the length direction of the lower clamping plates (24); The cutting device (30) includes a pair of upper clamping plates (31) horizontally disposed above the spring (21), a connector (32) for connecting the upper clamping plates (31) and the lower clamping plate (24), and a driving device (33) for driving one of the connectors (32) to move along the length direction of the culture tank (10).
2. The device for mass transplanting of micro-landscape plants according to claim 1, characterized in that: The lower clamping plate (24) is provided with lower connecting blocks (241) at both ends, and the lower connecting blocks (241) are provided with lower insertion holes in the vertical direction; Both ends of the upper clamping plate (31) are provided with upper connecting blocks (311), and the upper connecting blocks (311) are provided with upper insertion holes in the vertical direction.
3. The batch transplanting device for micro-landscape plants according to claim 2, characterized in that: The connector (32) includes a vertically arranged connecting rod (321), a horizontally opened pin hole at the upper end of the connecting rod (321), a pin rod (322) inserted into the pin hole, and a counterweight (323) at the lower end of the connecting rod (321). The connecting rod (321) passes through both the lower insertion hole and the upper insertion hole, the pin rod (322) is located above the upper connecting block (311), and the counterweight (323) is located below the lower connecting block (241).
4. The batch transplanting device for micro-landscape plants according to claim 3, characterized in that: The driving device (33) includes a lower slide rail (331) disposed on the lower surface of the culture tank (10), a lower slide block (332) slidably disposed in the lower slide rail (331), a driving rod (333) connected to the lower slide block (332), a pair of driving blocks (334) respectively disposed at both ends of the driving rod (333), and a connecting hole opened in the driving block (334) in the vertical direction; The counterweight (323) is located directly below the drive block (334), and the connecting rod (321) passes through the connecting hole.
5. The batch transplanting device for micro-landscape plants according to claim 4, characterized in that: The lower slider (332) is equipped with a linear motor, which drives the lower slider (332) to move along the lower slide rail (331).
6. The device for mass transplanting of micro-landscape plants according to claim 1, characterized in that: The cutting device (30) further includes a support plate (34) horizontally disposed above the upper clamping plate (31), a bracket (35) for supporting the support plate (34), and a pair of telescopic components (36) slidably connected to the support plate (34). One of the telescopic components (36) is fixedly connected to one of the upper clamps (31).
7. The device for mass transplanting of micro-landscape plants according to claim 6, characterized in that: The telescopic assembly (36) includes a sliding plate (361) horizontally disposed on the lower side of the support plate (34), a pair of telescopic rods (363) vertically disposed on the lower sides of both ends of the sliding plate (361), and a tension spring (362) sleeved on the telescopic rods (363); The lower end of the telescopic rod (363) is fixedly connected to the upper clamping plate (31), the upper end of the tension spring (362) is fixedly connected to the sliding plate (361), and the lower end of the tension spring (362) is fixedly connected to the upper clamping plate (31).
8. The device for mass transplanting of micro-landscape plants according to claim 7, characterized in that: The support plate (34) is provided with an upper slide rail (365) on its lower side, and the slide plate (361) is provided with an upper slider (364) on its upper side; the upper slider (364) is slidably disposed in the upper slide rail (365).
9. The device for mass transplanting of micro-landscape plants according to claim 1, characterized in that: The cutting device (30) further includes a transfer plate (37), the length of which is greater than the width of the culture tank (10); the length direction of the transfer plate (37) is perpendicular to the length direction of the culture tank (10); The transfer plate (37) can be inserted between the culture tank (10) and the spring (21). The portion of the transfer plate (37) below the spring (21) has multiple slots (38). The multiple slots (38) are parallel to each other. The length direction of the slots (38) is parallel to the length direction of the spring (21). The distance between adjacent slots (38) is equal to the distance between adjacent springs (21). The spring (21) can be locked in the slots (38) after being stretched.
10. The device for mass transplanting of micro-landscape plants according to claim 1, characterized in that: The spring (21) is made of a hyperelastic material.
Citation Information
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