Rapid transplanting device for landscape nursery stocks in gardens
By designing a rapid transplanting device for garden landscape seedlings, and utilizing components such as lifting electric push rods and drive motors, the device enables uniform processing and standardized transplanting of seedlings, solving the problems of low efficiency and high cost in transplanting small seedlings, and improving operational efficiency and survival rate.
Patent Information
- Application Number
- CN202423100133.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-16
AI Technical Summary
Existing technologies require extensive manual labor for transplanting small and medium-sized seedlings, and the uneven root system makes standardized transplanting impossible, affecting transplanting efficiency and increasing costs.
A rapid transplanting device for garden landscape seedlings was designed, including a fixed support frame, a processing component, and a linkage component. It utilizes components such as lifting electric push rods, drive motors, and electromagnetic blocks to achieve uniform treatment of soil and root systems. Combined with moving wheels and switching electric slide rails, it improves operating efficiency and reduces damage.
It achieves uniform treatment and standardized transplantation of seedling roots, reduces manpower consumption, lowers labor intensity and costs, and improves transplantation speed and survival rate.
Smart Images

Figure CN223488885U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of landscape technology, specifically a rapid transplanting device for landscape seedlings in gardens. Background Technology
[0002] Landscape seedling transplanting equipment is a specialized tool used to transplant trees, shrubs, and other plants from one place to another. This equipment plays an important role in landscaping, beautification, and urban greening. Nowadays, tree digging buckets, grab buckets, shovels, spades, crowbars, and other equipment are used for digging and transplanting seedlings.
[0003] However, when transplanting small seedlings, most of the transplanting is done manually. This process requires a lot of manpower, and the roots of the plants dug up are uneven and there is little soil, which makes it impossible to transplant in a standardized manner, affecting the efficiency of transplanting and increasing the cost of transplanting. Utility Model Content
[0004] This utility model provides a rapid transplanting device for landscape seedlings in gardens, which can effectively solve the problems mentioned in the background art, where the transplanting of small seedlings is mostly done manually by digging and transplanting. In this process, a lot of manpower is required, and the roots of the plants dug up are uneven and there is little soil, which makes it impossible to carry out standardized transplanting, affecting the efficiency of transplanting and increasing the cost of transplanting.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a rapid transplanting device for landscape seedlings in gardens, including a fixed support frame, wherein a processing component is provided on the inner side of the fixed support frame, and the processing component includes a lifting electric push rod;
[0006] The top of the fixed support frame is fixed with several lifting electric push rods at equal intervals. The top of the multiple lifting electric push rods is fixed with an integrated operating frame. The bottom of the integrated operating frame is snapped with a belt drive box. A drive motor is installed at the bottom of the integrated operating frame corresponding to the position of the belt drive box through a motor mount.
[0007] One end of the output shaft of the belt drive box is snapped with an integrated linkage frame. The side end of the integrated linkage frame is welded with a locking and limiting sleeve at equal intervals. The inner side of the locking and limiting sleeve is slidably connected with an embedded slotted plate. Several processing electric push rods are fixed at equal intervals at the top of the integrated operation frame. A processing electromagnetic block is fixed at the bottom end of the processing electric push rod.
[0008] The locking and limiting sleeve is slidably connected to a limiting protective block on one side, and a limiting electromagnetic block is magnetically connected to the side of the limiting protective block. One end of the limiting electromagnetic block is rotatably connected to an alignment processing frame, and an alignment electric push rod is snapped into the top of the alignment processing frame.
[0009] According to the above technical solution, the integrated operating frame is slidably sleeved inside the fixed support frame, and the input ends of the lifting electric push rod, the transmission motor, the processing electric push rod, the processing electromagnetic block, the limiting electromagnetic block and the positioning electric push rod are all electrically connected to the output end of the external power supply.
[0010] According to the above technical solution, the output shaft of the transmission motor is engaged with the input shaft of the belt drive box, and the bottom end of the processing electromagnetic block is magnetically connected to the top end of the embedded slotted plate.
[0011] According to the above technical solution, the alignment electric push rod is engaged with the integrated operating frame, and the longitudinal section of the limiting protective block is arc-shaped.
[0012] According to the above technical solution, a linkage component is provided on the side of the fixed support frame, and the linkage component includes a storage battery;
[0013] A battery is installed on one end of the inner side of the fixed support frame. Several support electric push rods are equidistantly snapped onto the side end of the fixed support frame. The bottom end of the support electric push rod is rotatably connected to a load-bearing fixed frame. The side end of the load-bearing fixed frame is rotatably connected to a moving wheel.
[0014] The bottom end of the fixed support frame is engaged with a switching electric slide rail, and the bottom end of the switching electric slide rail is connected to a switching alignment plate via a slide rail seat. A collection fixing sleeve is welded to one end of the switching alignment plate.
[0015] According to the above technical solution, the switching alignment plate and the collecting fixing sleeve are both slidably fitted with the fixed support frame, and the input ends of the supporting electric push rod and the switching electric slide rail are both electrically connected to the output end of the battery.
[0016] Compared with the prior art, the advantages of this utility model are: the structure of this utility model is scientific and reasonable, and it is safe and convenient to use.
[0017] 1. Equipped with a processing component, the processing electromagnetic block, driven by a processing electric actuator, pushes the embedded slotted plate into the soil. A locking retaining sleeve engages with the embedded slotted plate. A drive motor and belt drive box rotate the integrated linkage frame and the embedded slotted plate. Circular cutting ensures uniform treatment of the soil and roots, guaranteeing uniform root development during transplantation. This facilitates standardized planting and improves operational efficiency. An alignment electric actuator drives the alignment processing frame and the limiting electromagnetic block to embed the limiting protective block into the trench. A lifting electric actuator then raises and lowers the integrated operation frame, enabling the entire plant to be extracted quickly. Reverse operation allows for rapid placement and planting of seedlings, effectively improving operational efficiency, reducing manpower, alleviating labor intensity, and lowering transplantation costs.
[0018] 2. Equipped with a linkage component, the support electric actuator drives the load-bearing fixing frame and the moving wheels to change the height of the fixing support frame, allowing for quick adjustments when dealing with seedlings of different heights. The moving wheels, in conjunction with changing the position of the equipment, achieve a stable fit, ensuring accurate alignment during transplantation. The switching electric slide rail drives the switching alignment plate and the collection fixing sleeve to move and fit together, isolating and protecting the bottom of the seedling, reducing root damage and soil loss during transportation, and improving the survival rate of transplanted seedlings. Attached Figure Description
[0019] The accompanying drawings are provided to further understand the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation thereof.
[0020] In the attached diagram:
[0021] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;
[0022] Figure 2 This is a schematic diagram of the processing component of this utility model;
[0023] Figure 3 This is a schematic diagram of the installation structure of the drive motor of this utility model;
[0024] Figure 4 This is a schematic diagram of the installation structure of the embedded slotted plate of this utility model;
[0025] Figure 5 This is a schematic diagram of the linkage component of this utility model;
[0026] Numbered in the diagram: 1. Fixed support frame;
[0027] 2. Processing components; 201. Lifting electric actuator; 202. Integrated operating frame; 203. Belt drive box; 204. Drive motor; 205. Integrated linkage frame; 206. Locking and limiting sleeve; 207. Embedded slotted plate; 208. Processing electric actuator; 209. Processing electromagnetic block; 210. Limiting protection block; 211. Limiting electromagnetic block; 212. Alignment processing frame; 213. Alignment electric actuator;
[0028] 3. Linkage components; 301. Battery; 302. Supporting electric actuator; 303. Load-bearing fixing frame; 304. Moving wheels; 305. Switching electric slide rail; 306. Switching alignment plate; 307. Collection fixing sleeve. Detailed Implementation
[0029] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0030] Example: Figure 1-5 As shown, this utility model provides a technical solution: a rapid transplanting device for landscape seedlings in gardens, including a fixed support frame 1. A processing component 2 is provided inside the fixed support frame 1. The processing component 2 includes a lifting electric push rod 201, an integrated operation frame 202, a belt drive box 203, a drive motor 204, an integrated linkage frame 205, a locking and limiting sleeve 206, an embedded slotted plate 207, a processing electric push rod 208, a processing electromagnetic block 209, a limiting protective block 210, a limiting electromagnetic block 211, an alignment processing frame 212, and an alignment electric push rod 213.
[0031] A number of lifting electric push rods 201 are fixed at equal intervals at the top of the fixed support frame 1. An integrated operating frame 202 is fixed at the top of the multiple lifting electric push rods 201. The integrated operating frame 202 is slidably sleeved on the inner side of the fixed support frame 1 to ensure stable support and positioning of the integrated sliding lifting. A belt drive box 203 is snapped into the bottom of the integrated operating frame 202. A drive motor 204 is installed at the bottom of the integrated operating frame 202 corresponding to the position of the belt drive box 203 through a motor mount. The output shaft of the drive motor 204 is snapped into the input shaft of the belt drive box 203 to achieve a stable transmission connection.
[0032] One end of the output shaft of the belt drive box 203 is snapped with an integrated linkage frame 205. The side end of the integrated linkage frame 205 is welded with a locking and limiting sleeve 206 at equal intervals. The inner side of the locking and limiting sleeve 206 is slidably connected with an embedded slotted plate 207. Several processing electric push rods 208 are fixed at equal intervals at the top of the integrated operating frame 202. The bottom end of the processing electric push rod 208 is fixed with a processing electromagnetic block 209. The bottom end of the processing electromagnetic block 209 is magnetically connected to the top end of the embedded slotted plate 207 to ensure a stable connection between the fixed connection and the lifting and replacement.
[0033] The locking and limiting sleeve 206 is slidably connected to the side end of the limiting and protecting block 210. The longitudinal section of the limiting and protecting block 210 is arc-shaped to ensure stable alignment and fitting. The side end of the limiting and protecting block 210 is magnetically connected to the limiting electromagnetic block 211. One end of the limiting electromagnetic block 211 is rotatably connected to the alignment processing frame 212. The top of the alignment processing frame 212 is locked with the alignment electric push rod 213. The alignment electric push rod 213 is locked with the integrated operation frame 202 to achieve steady lifting and lowering support.
[0034] To ensure stable operation of the equipment, the input ends of the lifting electric push rod 201, the drive motor 204, the processing electric push rod 208, the processing electromagnetic block 209, the limiting electromagnetic block 211, and the positioning electric push rod 213 are all electrically connected to the output end of an external power supply.
[0035] A linkage component 3 is provided on the side of the fixed support frame 1. The linkage component 3 includes a battery 301, a support electric push rod 302, a load-bearing fixed frame 303, a moving wheel 304, a switching electric slide rail 305, a switching alignment plate 306, and a collection fixing sleeve 307.
[0036] A battery 301 is installed on one end of the inner side of the fixed support frame 1. Several support electric push rods 302 are equidistantly snapped onto the side end of the fixed support frame 1. The bottom end of the support electric push rod 302 is rotatably connected to a load-bearing fixed frame 303. The side end of the load-bearing fixed frame 303 is rotatably connected to a moving wheel 304.
[0037] The bottom end of the fixed support frame 1 is snapped with a switching electric slide rail 305. The bottom end of the switching electric slide rail 305 is connected to a switching alignment plate 306 through a slide rail seat. The switching alignment plate 306 and the collection fixing sleeve 307 are both slidably fitted with the fixed support frame 1 to achieve steady support switching and ensure the stability of the alignment support. The collection fixing sleeve 307 is welded to one end of the switching alignment plate 306.
[0038] To ensure stable operation of the equipment, the input ends of the supporting electric push rod 302 and the switching electric slide rail 305 are electrically connected to the output end of the storage battery 301.
[0039] The working principle and usage process of this utility model are as follows: When transplanting landscape seedlings, the equipment is powered by the storage battery 301. The support electric push rod 302 drives the load-bearing fixed frame 303 and the moving wheel 304 to move downward, lifting the fixed support frame 1. The staff uses the moving wheel 304 to push the fixed support frame 1 to the top of the seedling to be transplanted. The support electric push rod 302 drives the fixed support frame 1 to move down and reset, fitting the seedling into the inner end position of the fixed support frame 1 and the integrated operation frame 202, achieving alignment support and alignment protection.
[0040] The processing electric actuator 208 drives the processing electromagnetic block 209 to push the embedded slotted plate 207 downwards along the engaging limiting sleeve 206, pushing the embedded slotted plate 207 into the soil. Simultaneously, the engaging limiting sleeve 206 engages with the embedded slotted plate 207. After multiple embedded slotted plates 207 are fully inserted into the soil, the drive motor 204 and belt drive box 203 drive the integrated linkage frame 205 to rotate. The integrated linkage frame 205 drives the embedded slotted plates 207 to rotate, cutting and separating the soil, thus separating the seedlings. The limiting electromagnetic block 211 and the limiting protective block 210 are magnetically connected. The alignment electric push rod 213 drives the alignment processing frame 212 to push the limiting electromagnetic block 211 and the limiting protective block 210 into the side end of the seedling. The lifting electric push rod 201 drives the integrated operation frame 202 to lift and lower, thereby removing the seedling as a whole from the soil. During removal, the switching electric slide rail 305 drives the switching alignment plate 306 and the collection fixing sleeve 307 to move and fit together, isolating and protecting the bottom end of the seedling, reducing root damage and soil loss during transportation.
[0041] The fixed support frame 1 is moved again by the moving wheel 304 to move the seedling to the planting position. By reversing the operation, the seedling is placed into the dug hole to realize the transplanting treatment and improve the transplanting speed.
[0042] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A rapid transplanting device for landscape seedlings in gardens, comprising a fixed support frame (1), characterized in that: The fixed support frame (1) is provided with a processing component (2) inside, and the processing component (2) includes a lifting electric push rod (201); The top of the fixed support frame (1) is fixed with a plurality of lifting electric push rods (201) at equal intervals. The top of the plurality of lifting electric push rods (201) is fixed with an integrated operating frame (202). The bottom of the integrated operating frame (202) is snapped with a belt drive box (203). The bottom of the integrated operating frame (202) is connected to the belt drive box (203) via a motor mount and a drive motor (204) is installed at the position of the belt drive box (203) at the bottom of the integrated operating frame (202). One end of the output shaft of the belt drive box (203) is snapped with an integrated linkage frame (205). The integrated linkage frame (205) has a locking and limiting sleeve (206) welded at equal intervals on its side. The locking and limiting sleeve (206) has an embedded slotted plate (207) slidably connected to its inner side. The top of the integrated operation frame (202) has several processing electric push rods (208) fixed at equal intervals. The bottom end of the processing electric push rod (208) has a processing electromagnetic block (209) fixed. The locking and limiting sleeve (206) is slidably connected to a limiting protective block (210) on its side end. The limiting protective block (210) is magnetically connected to a limiting electromagnetic block (211) on its side end. One end of the limiting electromagnetic block (211) is rotatably connected to an alignment processing frame (212). The top end of the alignment processing frame (212) is locked with an alignment electric push rod (213).
2. The rapid transplanting device for landscape seedlings in gardens according to claim 1, characterized in that, The integrated operating frame (202) is slidably sleeved on the inner side of the fixed support frame (1). The input ends of the lifting electric push rod (201), the drive motor (204), the processing electric push rod (208), the processing electromagnetic block (209), the limiting electromagnetic block (211), and the positioning electric push rod (213) are all electrically connected to the output end of the external power supply.
3. The rapid transplanting device for landscape seedlings according to claim 1, characterized in that, The output shaft of the drive motor (204) is engaged with the input shaft of the belt drive box (203), and the bottom end of the processing electromagnetic block (209) is magnetically connected to the top end of the embedded slotted plate (207).
4. The rapid transplanting device for landscape seedlings in gardens according to claim 1, characterized in that, The alignment electric actuator (213) is engaged with the integrated operating frame (202), and the longitudinal section of the limiting protective block (210) is arc-shaped.
5. The rapid transplanting device for landscape seedlings in gardens according to claim 1, characterized in that, The fixed support frame (1) is provided with a linkage component (3) on its side, and the linkage component (3) includes a storage battery (301); A battery (301) is installed on one end of the inner side of the fixed support frame (1). Several support electric push rods (302) are equidistantly connected to the side end of the fixed support frame (1). A load-bearing fixed frame (303) is rotatably connected to the bottom end of the support electric push rod (302). A moving wheel (304) is rotatably connected to the side end of the load-bearing fixed frame (303). The bottom end of the fixed support frame (1) is snapped with a switching electric slide rail (305), and the bottom end of the switching electric slide rail (305) is connected to a switching alignment plate (306) through a slide rail seat. A collection fixing sleeve (307) is welded to one end of the switching alignment plate (306).
6. A rapid transplanting device for landscape seedlings in gardens according to claim 5, characterized in that, The switching alignment plate (306) and the collecting fixing sleeve (307) are both slidably fitted with the fixed support frame (1), and the input ends of the supporting electric push rod (302) and the switching electric slide rail (305) are electrically connected to the output end of the storage battery (301).