Seedling transplanting device
The improved seedling transplanting device utilizes an electric telescopic rod and a flip motor to drive the sleeve to move down and open and close. Combined with the design of locking pins and docking grooves, it solves the problem of soil accumulation caused by the fixed connection of the sleeve, and achieves convenient cleaning and efficient transplanting.
Patent Information
- Application Number
- CN202520182497.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-06
AI Technical Summary
Existing forestry seedling transplanting devices have a sleeve that is fixedly connected between two sliding plates, which causes the accumulation of seedling soil residue, affecting cleaning and consequently impacting subsequent normal transplanting.
A seedling transplanting device was designed, comprising multiple supports, a top plate, casters, a storage box, a drive structure, an assembly structure, a connector, a sleeve, and an opening and closing component. The sleeve is driven to move down and open and close by an electric telescopic rod and a flip motor. The design of locking pins and docking grooves facilitates the disassembly and cleaning of the sleeve and the opening and closing component.
It enables convenient cleaning of the sleeve and opening/closing parts, avoids soil residue affecting transplanting results, and ensures the continuous and efficient use of the device.
Smart Images

Figure CN223885878U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of forestry seedling technology, and in particular to a seedling transplanting device. Background Technology
[0002] Seedling raising, or seedling cultivation, refers to the cultivation of seedlings in nurseries, hotbeds, or greenhouses until they reach a certain stage, in preparation for transplanting to the ground or soilless substrate. Transplanting generally requires the use of transplanting devices, but existing transplanting devices cannot deliver seedlings into the soil, resulting in low practicality.
[0003] The prior art (CN221670595U) discloses a forestry seedling transplanting device, including four supports. A top plate is fixedly connected between the tops of the four supports. Two cylinders are fixedly connected to the top of the top plate. The output ends of the cylinders extend to the bottom of the top plate and are fixedly connected to a sliding plate. A sleeve is fixedly connected between the two sliding plates. The cylinders push the sliding plates downward, which in turn drives the sleeve downward. At the same time, the sleeve drives the two sliding columns to slide in the strip groove. When the sleeve drives the sliding columns to the bottom of the strip groove, the sleeve continues to move downward. It will drive the two moving columns to slide in the annular groove with the sliding columns as the fulcrum, thereby opening the two wedge-shaped boxes, breaking up the soil and allowing the seedlings to fall into the soil.
[0004] However, with the above method, since the sleeve is fixedly connected between the two slide plates, after transplanting for a period of time, the seedling soil will remain and accumulate inside, making it inconvenient to clean the sleeve and the assembled wedge box, which in turn affects the subsequent normal transplanting. Utility Model Content
[0005] The purpose of this utility model is to provide a seedling transplanting device, which aims to solve the problem that in existing forestry seedling transplanting devices, because the sleeve is fixedly connected between two sliding plates, the seedling soil will remain and accumulate inside after transplanting for a period of time, making it inconvenient to clean the sleeve and the assembled wedge box, thus affecting the subsequent normal transplanting.
[0006] To achieve the above objectives, this utility model provides a seedling transplanting device, including multiple supports, a top plate, multiple casters, a storage box, and transplanting components. The top plate is respectively disposed on one side of the multiple supports; the multiple casters are respectively disposed on one side of the multiple supports; and the storage box is disposed on one side of the top plate.
[0007] The transplanting assembly includes two drive structures, two assembly structures, two plug-in sockets, a sleeve, and two opening and closing parts;
[0008] Two drive structures are respectively disposed on both sides of the top plate; two assembly structures are respectively located on one side of the two drive structures; each assembly structure includes an assembly frame, an operating component, and a locking pin, the assembly frame is fixedly connected to the drive structure and located on one side of the drive structure; the assembly frame has a mating groove located on one side of the assembly frame; the operating component is disposed on one side of the assembly frame; the locking pin is fixedly connected to the operating component and located on one side of the operating component; two insertion seats are respectively located inside the two assembly frames; a sleeve is fixedly connected to the two insertion seats and located between the two insertion seats; two opening and closing components are respectively disposed on both sides of the sleeve.
[0009] The driving structure includes an electric telescopic rod, a push block, and a guide member. The electric telescopic rod is fixedly connected to the top plate and located on one side of the top plate. The push block is fixedly connected to the output end of the electric telescopic rod and to the assembly frame, and is located on one side of the electric telescopic rod. The guide member is located on one side of the top plate.
[0010] The guide component includes a guide rod and a guide block. The guide rod is fixedly connected to the top plate and located on one side of the top plate. The guide block is slidably connected to the guide rod and fixedly connected to the push block, and located on one side of the push block.
[0011] The operating component includes an operating frame and a locking screw. The operating frame is fixedly connected to the assembly frame and located on one side of the assembly frame. The locking screw is threadedly connected to the operating frame and fixedly connected to the locking pin, and is located on one side of the operating frame.
[0012] The opening and closing component includes a flip frame, a flip motor, a flip shaft, and a wedge-shaped box. The flip frame is fixedly connected to the sleeve and located on one side of the sleeve. The flip motor is fixedly connected to the flip frame and located on one side of the flip frame. The flip shaft is fixedly connected to the output end of the flip motor and located on one side of the flip motor. The wedge-shaped box is fixedly connected to the flip shaft and located on one side of the flip shaft.
[0013] This utility model discloses a seedling transplanting device. During seedling transplanting, the entire device is moved to a suitable position using the universal wheels. The seedlings placed in the storage box are then placed into the sleeve. The drive structure drives the sleeves mounted on the two assembly structures, causing the sleeves to move downwards and contact the transplanting pit. Then, the two opening and closing parts open the sleeves, allowing the seedlings inside to fall into the transplanting pit. When cleaning the sleeves and opening and closing parts is required after a period of use, the operating parts on the assembly frame are operated to loosen the locking pins and the insertion seats on both sides of the sleeve. The insertion seats are then slidably removed from the sleeve via the docking groove. The inside of the sleeves and opening and closing parts is then cleaned. This solves the problem in existing forestry seedling transplanting devices where, because the sleeve is fixedly connected between two sliding plates, seedling soil residue accumulates inside after transplanting for a period of time, making it inconvenient to clean the sleeves and the assembled wedge-shaped box, thus affecting subsequent normal transplanting. Attached Figure Description
[0014] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0016] Figure 2 This is a structural schematic diagram of the entire utility model from another angle.
[0017] Figure 3 This is a front view of the entire utility model.
[0018] Figure 4 This is a cross-sectional view of the operating component and locking pin of this utility model.
[0019] 101-Bracket, 102-Top plate, 103-Wheel casters, 104-Storage box, 105-Drive structure, 106-Assembly structure, 107-Plug-in socket, 108-Sleeve, 109-Opening / closing part, 110-Assembly frame, 111-Operating part, 112-Locking pin, 113-Electric telescopic rod, 114-Push block, 115-Guide part, 116-Guide rod, 117-Guide block, 118-Operating frame, 119-Locking screw, 120-Flipping frame, 121-Flipping motor, 122-Flipping shaft, 123-Wedge box, 124-Matching groove. Detailed Implementation
[0020] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0021] Please see Figures 1-4 ,in, Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a structural schematic diagram of the entire utility model from another angle. Figure 3 This is a front view of the entire utility model. Figure 4 This is a cross-sectional view of the operating component and locking pin of this utility model.
[0022] This utility model discloses a seedling transplanting device, comprising multiple supports 101, a top plate 102, multiple casters 103, a storage box 104, and a transplanting assembly. The transplanting assembly includes two drive structures 105, two assembly structures 106, two connectors 107, a sleeve 108, and two opening / closing parts 109. Each assembly structure 106 includes an assembly frame 110, an operating component 111, and a locking pin 112. The assembly frame 110 has a mating groove 124. The drive structures 105 include an electric telescopic rod 113, a push block 114, and a guide component 115. The guide component 115 includes a guide rod 116 and a guide block 117. The operating component 111 includes an operating frame 118 and a locking screw 119. The opening and closing component 109 includes a flip frame 120, a flip motor 121, a flip shaft 122, and a wedge box 123. The aforementioned solution solves the problem in existing forestry seedling transplanting devices where, because the sleeve 108 is fixedly connected between two sliding plates, seedling soil will remain and accumulate inside after transplanting for a period of time, making it inconvenient to clean the sleeve 108 and the assembled wedge box 123, thus affecting subsequent normal transplanting.
[0023] In this specific embodiment, the top plate 102 is respectively disposed on one side of the plurality of brackets 101; the plurality of casters 103 are respectively disposed on one side of the plurality of brackets 101; the storage box 104 is disposed on one side of the top plate 102, and the top plate 102, together with the plurality of brackets 101, supports the storage box 104 and the transplanting assembly. The storage box 104 is used to place seedlings, and the casters 103 are used to support the movement of the entire device. The specific structure of the storage box 104 is described in reference to the patent document with publication number CN221670595U, and will not be elaborated further here.
[0024] Two drive structures 105 are respectively disposed on both sides of the top plate 102; two assembly structures 106 are respectively located on one side of the two drive structures 105; each assembly structure 106 includes an assembly frame 110, an operating component 111, and a locking pin 112. The assembly frame 110 is fixedly connected to the drive structure 105 and is located on one side of the drive structure 105; the docking groove 124 is located on one side of the assembly frame 110; the operating component 111 is disposed on one side of the assembly frame 110; The locking pin 112 is fixedly connected to the operating component 111 and is located on one side of the operating component 111; the two plug-in seats 107 are respectively located inside the two assembly frames 110; the sleeve 108 is fixedly connected to the two plug-in seats 107 and is located between the two plug-in seats 107; the two opening and closing parts 109 are respectively disposed on both sides of the sleeve 108. The entire device is moved to a suitable position by means of the universal wheels 103, and then the seedlings placed in the storage box 104 are placed into the sleeve 108. In sleeve 108, the drive structure 105 controls the two sleeves 108 mounted on the assembly structure 106 to move downwards to contact the transplanting pit. Then, the two opening / closing parts 109 are controlled to open the sleeve 108, allowing the seedlings inside to fall into the transplanting pit. When cleaning of the sleeve 108 and the opening / closing parts 109 is required after a period of use, the operating part 111 on the assembly frame 110 is operated to release the locking pin 112, and the sleeve 108... The plug-in seats 107 on both sides of 08 are then used to slide the plug-in seats 107 through the docking groove 124 to disassemble the sleeve 108. Then, the inside of the sleeve 108 and the opening and closing part 109 are cleaned. This solves the problem in the existing forestry seedling transplanting device that, since the sleeve 108 is fixedly connected between the two sliding plates, the seedling soil will remain and accumulate inside after transplanting for a period of time, making it inconvenient to clean the sleeve 108 and the assembled wedge box 123, thus affecting the subsequent normal transplanting.
[0025] Secondly, the electric telescopic rod 113 is fixedly connected to the top plate 102 and located on one side of the top plate 102; the push block 114 is fixedly connected to the output end of the electric telescopic rod 113 and to the assembly frame 110, and located on one side of the electric telescopic rod 113; the guide member 115 is disposed on one side of the top plate 102, and the electric telescopic rod 113 is used to drive the push block 114 to extend and retract through the guidance of the guide member 115.
[0026] Furthermore, the guide rod 116 is fixedly connected to the top plate 102 and located on one side of the top plate 102; the guide block 117 is slidably connected to the guide rod 116 and fixedly connected to the push block 114 and located on one side of the push block 114. The guide rod 116 is used to support the sliding of the guide block 117, and the guide block 117 is used to guide the position of the push block 114 when it moves.
[0027] In addition, the operating frame 118 is fixedly connected to the assembly frame 110 and is located on one side of the assembly frame 110; the locking screw 119 is threadedly connected to the operating frame 118 and fixedly connected to the locking pin 112, and is located on one side of the operating frame 118. The operating frame 118 is used to support the rotation of the locking screw 119. Twisting the locking screw 119 rotates the locking pin 112, which drives the locking pin 112 to be inserted into the plug-in seat 107 to restrict the plug-in seat 107, thereby assembling the sleeve 108.
[0028] Furthermore, the flip frame 120 is fixedly connected to the sleeve 108 and located on one side of the sleeve 108; the flip motor 121 is fixedly connected to the flip frame 120 and located on one side of the flip frame 120; the flip shaft 122 is fixedly connected to the output end of the flip motor 121 and located on one side of the flip motor 121; the wedge box 123 is fixedly connected to the flip shaft 122 and located on one side of the flip shaft 122. The flip frame 120 is used to support the assembly of the flip motor 121 and control the flip motor 121 to drive the flip shaft 122 to rotate. The rotation of the flip shaft 122 drives the wedge box 123 to open and close.
[0029] When using this invention, the entire device is moved to a suitable position using the casters 103. Then, the seedlings placed in the storage box 104 are placed into the sleeve 108. The electric telescopic rod 113 drives the pusher 114, guided by the guide member 115, so that the sleeve 108 moves downwards to contact the transplanting pit. Then, the flipping motor 121 drives the flipping shaft 122 to rotate, flipping the wedge-shaped box 123 and opening the sleeve 108, allowing the seedlings inside to fall into the transplanting pit. After a period of use, the sleeve 108 and the wedge-shaped box 123 need to be cleaned. By operating the locking screw 119 on the operating frame 118, the locking pin 112 is released, and the plug-in seats 107 on both sides of the sleeve 108 are opened. Then, the plug-in seats 107 are slidably disassembled from the sleeve 108 through the docking groove 124. Then, the inside of the sleeve 108 and the wedge box 123 are cleaned. This solves the problem in the existing forestry seedling transplanting device that, because the sleeve 108 is fixedly connected between two sliding plates, the seedling soil will remain and accumulate inside after transplanting for a period of time, making it inconvenient to clean the sleeve 108 and the assembled wedge box 123, thus affecting the subsequent normal transplanting.
[0030] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A seedling transplanting device, comprising multiple supports, a top plate, multiple casters, and a storage box, wherein the top plate is respectively disposed on one side of the multiple supports; the multiple casters are respectively disposed on one side of the multiple supports; and the storage box is disposed on one side of the top plate; characterized in that, It also includes transplanting components, The transplanting assembly includes two drive structures, two assembly structures, two plug-in sockets, a sleeve, and two opening and closing parts; The two drive structures are respectively disposed on both sides of the top plate; the two assembly structures are respectively located on one side of the two drive structures; the assembly structure includes an assembly frame, an operating component and a locking pin, the assembly frame is fixedly connected to the drive structure and is located on one side of the drive structure; The assembly frame has a mating groove located on one side of the assembly frame; the operating component is located on one side of the assembly frame; the locking pin is fixedly connected to the operating component and located on one side of the operating component; the two plug-in seats are respectively located inside the two assembly frames; the sleeve is fixedly connected to the two plug-in seats and located between the two plug-in seats; the two opening and closing components are respectively located on both sides of the sleeve.
2. The seedling transplanting device as described in claim 1, characterized in that, The driving structure includes an electric telescopic rod, a push block, and a guide member. The electric telescopic rod is fixedly connected to the top plate and located on one side of the top plate. The push block is fixedly connected to the output end of the electric telescopic rod and to the assembly frame, and is located on one side of the electric telescopic rod. The guide member is located on one side of the top plate.
3. The seedling transplanting device as described in claim 2, characterized in that, The guide component includes a guide rod and a guide block. The guide rod is fixedly connected to the top plate and located on one side of the top plate. The guide block is slidably connected to the guide rod and fixedly connected to the push block, and located on one side of the push block.
4. The seedling transplanting device as described in claim 3, characterized in that, The operating component includes an operating frame and a locking screw. The operating frame is fixedly connected to the assembly frame and located on one side of the assembly frame. The locking screw is threadedly connected to the operating frame and fixedly connected to the locking pin, and is located on one side of the operating frame.
5. The seedling transplanting device as described in claim 4, characterized in that, The opening and closing component includes a flip frame, a flip motor, a flip shaft, and a wedge-shaped box. The flip frame is fixedly connected to the sleeve and located on one side of the sleeve. The flip motor is fixedly connected to the flip frame and located on one side of the flip frame. The flip shaft is fixedly connected to the output end of the flip motor and located on one side of the flip motor. The wedge-shaped box is fixedly connected to the flip shaft and located on one side of the flip shaft.
Citation Information
Patent Citations
Forestry seedling transplanting device
CN221670595U