Evolution of the device for transplanting seedlings of evodia rutaecarpa

CN224734239UActive Publication Date: 2026-09-11XIANGYANG YAOSHAN AGRICULTURAL SCIENCE & TECHNOLOGY DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202522198961.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2026-09-11
Estimated Expiration
2035-10-17

AI Technical Summary

Technical Problem

[0003]现有技术中,移苗装置主体为一个圆筒结构,在使用时,将圆筒插入到吴茱萸苗的外周侧,并将吴茱萸苗和土块一同翘起,而现有技术中,在将吴茱萸苗翘起后,吴茱萸苗连同土块一同停留在圆筒内,需要敲击圆筒才能使土块掉落,容易造成土块与吴茱萸苗之间分离,导致吴茱萸苗的根部没有水和养分,导致其在运输过程中极易死亡,有待改进

Benefits of technology

[0015] The beneficial effects of this utility model are: through the coordinated design of the round rod, the pedal, the Evodia rutaecarpa transplanting tube and the discharge mechanism, the soil around the Evodia rutaecarpa seedlings can be compressed and tightened during the transplanting process, which not only prevents the soil from falling off but also makes it easy to remove the seedlings from the Evodia rutaecarpa transplanting tube, greatly improving the safety and convenience of transplanting the Evodia rutaecarpa seedlings.

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Abstract

The utility model relates to transplanting equipment field discloses a safe seedling transplanting device for evodia rutaecarpa plantation, including the evodia rutaecarpa transplanting cylinder for transplanting evodia rutaecarpa, round bar and discharge mechanism, one end of round bar is fixedly connected with the pedal no.
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Description

Technical Field

[0001] This utility model relates to the field of transplanting equipment technology, and in particular to a safe transplanting device for planting Evodia rutaecarpa. Background Technology

[0002] Evodia rutaecarpa, also known as Wu Yu; transplanted seedlings refer to seedlings that have been dug up from the nursery and then transplanted for further cultivation. Transplanted seedlings can increase the nutrient area, improve ventilation and light conditions, promote the growth of lateral and fibrous roots, improve quality, and enhance adaptability to afforestation site conditions. With economic and technological development, the cultivation of many Chinese medicinal herbs often requires transplantation. Therefore, the demand for transplanting devices for Evodia rutaecarpa cultivation is increasing.

[0003] In the existing technology, the main body of the transplanting device is a cylindrical structure. When in use, the cylinder is inserted into the outer periphery of the Evodia rutaecarpa seedling, and the seedling and soil clod are lifted together. However, in the existing technology, after the seedling is lifted, it remains inside the cylinder along with the soil clod. The cylinder needs to be tapped to make the soil clod fall off, which easily causes the soil clod to separate from the seedling. This results in the roots of the seedling not receiving water and nutrients, making it very easy for the seedling to die during transportation. This technology needs to be improved.

[0004] Therefore, this application proposes a safe transplanting device for Evodia rutaecarpa cultivation to solve the problems in the background art. Utility Model Content

[0005] The purpose of this invention is to provide a safe transplanting device for Evodia rutaecarpa planting, which not only prevents soil from falling off but also facilitates the removal of Evodia rutaecarpa seedlings from the transplanting tube.

[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a safe transplanting device for planting Evodia rutaecarpa, comprising an Evodia rutaecarpa transplanting cylinder, a round rod, and a discharge mechanism for transplanting Evodia rutaecarpa;

[0007] One end of the round rod is fixedly connected to a pedal, the bottom of the pedal is fixedly connected to a fixing rod, one end of the fixing rod is fixedly connected to an Evodia rutaecarpa transplanting tube, and the discharge mechanism is provided on the Evodia rutaecarpa transplanting tube and the round rod.

[0008] The discharge mechanism includes a round tube, an annular airbag, a piston rod, a second pedal, and a spring. An installation groove is provided on the inner side of the *Evodia rutaecarpa* transplanting cylinder, and an annular airbag is fixedly installed in the groove. A round tube is fixedly connected to the bottom of the first pedal, and one end of the round tube is sealed to the *Evodia rutaecarpa* transplanting cylinder. Through the coordinated design of the round rod, the first pedal, the *Evodia rutaecarpa* transplanting cylinder, and the discharge mechanism, the soil around the *Evodia rutaecarpa* seedlings can be compressed and tightened during transplanting, preventing soil loss and facilitating removal from the transplanting cylinder, greatly improving the safety and convenience of transplanting *Evodia rutaecarpa* seedlings.

[0009] A further feature of this invention is that: an inflation hole is provided on the outer side of the annular airbag; a second air hole is provided on the Evodia rutaecarpa transplanting tube; the two ends of the second air hole are respectively connected to the inflation hole and the round tube; a first air hole is provided on the pedal; one end of the first air hole is connected to the round tube; and a cavity is provided at one end of the round rod, which is connected to the first air hole. The effect of gas delivery can be achieved through the combined action of the first air hole, the round tube, and the second air hole.

[0010] A further feature of this invention is as follows: a piston rod is slidably connected within the cavity, and a second pedal is fixedly connected to one end of the piston rod. The second pedal is slidably connected to the round rod, and a first sliding groove is provided on the round rod. The first sliding groove is connected to the cavity, and the second pedal slides within the first sliding groove. The worker holds the handle at one end of the round rod and simultaneously steps on the second pedal with one foot, causing the second pedal to drive the piston rod to slide downward a certain distance within the cavity, stretching the spring. At the same time, the piston rod compresses the air within the cavity, and through the combined action of the first air hole, the round tube, and the second air hole, the gas is transported to the annular airbag. At this time, the air pressure within the annular airbag increases, causing it to expand, thereby compressing the soil within the Evodia rutaecarpa transplanting cylinder from the inner side of the annular airbag.

[0011] A further feature of this invention is that: a second mounting groove is provided inside the round rod, and a spring is fixedly installed in the second mounting groove. One end of the spring is fixedly connected to the piston rod, and the piston rod returns to its original shape through the elastic potential energy of the spring.

[0012] A further feature of this invention is that a sealing ring is fixedly fitted onto one end of the piston rod to improve sealing performance.

[0013] A further feature of this invention is that the annular airbag is adapted to the Evodia rutaecarpa transplanting tube, which facilitates the compression of the soil inside the Evodia rutaecarpa transplanting tube.

[0014] A further feature of this invention is that the annular airbag is elastic, and because the annular airbag is elastic, it can restore its original shape under the action of its own elastic force.

[0015] The beneficial effects of this utility model are: through the coordinated design of the round rod, the pedal, the Evodia rutaecarpa transplanting tube and the discharge mechanism, the soil around the Evodia rutaecarpa seedlings can be compressed and tightened during the transplanting process, which not only prevents the soil from falling off but also makes it easy to remove the seedlings from the Evodia rutaecarpa transplanting tube, greatly improving the safety and convenience of transplanting the Evodia rutaecarpa seedlings. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a three-dimensional structural diagram of a safe transplanting device for planting Evodia rutaecarpa proposed in this utility model;

[0018] Figure 2 This is an anatomical diagram of a safe transplanting device for planting Evodia rutaecarpa proposed in this utility model;

[0019] Figure 3 This is a partial explosion diagram of a safe transplanting device for planting Evodia rutaecarpa proposed in this utility model;

[0020] Figure 4 A schematic diagram of the round rod, piston rod, pedal 2, and spring;

[0021] Figure 5 for Figure 2 A magnified structural diagram of point A in the middle.

[0022] In the diagram, 1. Round rod; 2. Pedal 1; 3. Fixing rod; 4. Round tube; 5. Evodia rutaecarpa transplanting tube; 6. Annular airbag; 7. Piston rod; 8. Pedal 2; 9. Spring; 10. Air hole 1; 11. Air hole 2. Detailed Implementation

[0023] The technical solution of this utility model will now be clearly and completely described with reference to specific embodiments. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without creative effort are within the scope of protection of this utility model.

[0024] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0025] Reference Figures 1-5 A safe transplanting device for planting Evodia rutaecarpa includes an Evodia rutaecarpa transplanting cylinder 5, a round rod 1, and a discharge mechanism for transplanting Evodia rutaecarpa.

[0026] One end of the round rod 1 is fixedly connected to the pedal 2, the bottom of the pedal 2 is fixedly connected to the fixing rod 3, one end of the fixing rod 3 is fixedly connected to the Evodia rutaecarpa transplanting cylinder 5, and the discharge mechanism is located on the Evodia rutaecarpa transplanting cylinder 5 and the round rod 1.

[0027] The discharge mechanism includes a round pipe 4, an annular airbag 6, a piston rod 7, a second pedal 8, and a spring 9. An installation groove 1 is opened on the inner side of the Evodia rutaecarpa transplanting cylinder 5, and the annular airbag 6 is fixedly installed in the installation groove 1. The bottom of the first pedal 2 is fixedly connected to the round pipe 4, and one end of the round pipe 4 is sealed to the Evodia rutaecarpa transplanting cylinder 5. Through the coordinated design between the round rod 1, the first pedal 2, the Evodia rutaecarpa transplanting cylinder 5, and the discharge mechanism, the soil around the Evodia rutaecarpa seedlings can be compressed and tightened during the transplanting process. This not only prevents the soil from falling off but also makes it easy to remove the seedlings from the Evodia rutaecarpa transplanting cylinder 5, greatly improving the safety and convenience of transplanting the Evodia rutaecarpa seedlings.

[0028] In this method, an inflation hole is provided on the outer side of the annular airbag 6, an air hole 11 is provided on the Evodia rutaecarpa transplanting tube 5, and the two ends of the air hole 11 are connected to the inflation hole and the round tube 4 respectively. An air hole 10 is provided on the pedal 2, and one end of the air hole 10 is connected to the round tube 4. A cavity is provided at one end of the round rod 1, and the cavity is connected to the air hole 10. The gas delivery effect can be achieved through the cooperation between the air hole 10, the round tube 4, and the air hole 11.

[0029] In this method, a piston rod 7 is slidably connected inside the cavity. One end of the piston rod 7 is fixedly connected to a pedal 8, which is slidably connected to a round rod 1. A sliding groove is provided on the round rod 1, which is connected to the cavity. The pedal 8 slides in the sliding groove. The worker holds the handle at one end of the round rod 1 and simultaneously steps on the pedal 8 with one foot. This causes the pedal 8 to drive the piston rod 7 to slide downwards a certain distance inside the cavity, stretching the spring 9. At the same time, the piston rod 7 compresses the air inside the cavity. Simultaneously, the gas is transported to the annular airbag 6 through the cooperation of the air hole 10, the round tube 4, and the air hole 11. At this time, the air pressure inside the annular airbag 6 increases and causes it to expand, thereby compressing the soil inside the Evodia rutaecarpa transplanting cylinder 5 on the inner side of the annular airbag 6.

[0030] In this method, a second mounting groove is provided inside the round rod 1, and a spring 9 is fixedly installed in the second mounting groove. One end of the spring 9 is fixedly connected to the piston rod 7, and the piston rod 7 returns to its original shape by the elastic potential energy of the spring 9.

[0031] In this method, a sealing ring is fixedly fitted at one end of the piston rod 7 to improve the sealing performance.

[0032] In this method, the annular airbag 6 is adapted to the Evodia rutaecarpa transplanting tube 5, which facilitates the compression of the soil inside the Evodia rutaecarpa transplanting tube 5.

[0033] In this method, the annular airbag 6 is elastic. Because the annular airbag 6 is elastic, it can restore its original shape under the action of its own elastic force.

[0034] Working principle: In use, first, the Evodia rutaecarpa transplanting tube 5 is placed on the Evodia rutaecarpa seedling to be transplanted. Then, by stepping on pedal 12, the Evodia rutaecarpa transplanting tube 5 can be inserted into the soil around the Evodia rutaecarpa seedling. After that, the Evodia rutaecarpa seedling and the soil are taken out together. Then, the worker holds the handle at one end of the round rod 1 and steps on pedal 28 with one foot. This causes pedal 28 to drive the piston rod 7 to slide down a certain distance in the cavity, and the spring 9 is stretched. At the same time, the piston rod 7 compresses the air in the cavity. Simultaneously, through the cooperation between air hole 10, round tube 4, and air hole 21, the gas is transported to the annular air bladder 6. At this time, the air pressure in the annular air bladder 6 increases and it expands, thereby squeezing the soil in the Evodia rutaecarpa transplanting tube 5 on the inside of the annular air bladder 6 and causing it to contract and tightly wrap around the roots of the Evodia rutaecarpa seedling. This achieves the effect of preventing the soil from falling off the roots of the Evodia rutaecarpa seedling and improves the survival rate of transplanting.

[0035] Afterwards, the pedal 8 is released and the piston rod 7 returns to its original shape under the action of the elastic potential energy of the spring 9. At this time, because the annular airbag 6 is elastic, it returns to its original shape under the action of its own elastic force, and the annular airbag 6 is separated from the soil in the Evodia rutaecarpa transplanting tube 5, so that a gap is created between the soil and the inner side of the annular airbag 6. At the same time, under its own gravity, it automatically falls out of the Evodia rutaecarpa transplanting tube 5.

[0036] In summary, this achieves the goal of safely transplanting Evodia rutaecarpa seedlings.

[0037] The technological advancement of this invention compared to the prior art is that, through the cooperation of various components, the soil around the Evodia rutaecarpa seedlings can be compressed and tightened during the transplanting process. This not only prevents the soil from falling off but also makes it easier to remove the seedlings from the transplanting tube 5, greatly improving the safety and convenience of transplanting the seedlings. Moreover, the structure is simple and the practicality is higher.

Claims

1. A safe seedling transplanting device for Evodia rutaecarpa plantation, characterized in that, Includes a transplanting tube (5) for transplanting Evodia rutaecarpa, a round rod (1) and a discharge mechanism; One end of the round rod (1) is fixedly connected to a pedal (2), the bottom of the pedal (2) is fixedly connected to a fixing rod (3), one end of the fixing rod (3) is fixedly connected to an Evodia rutaecarpa transplanting tube (5), and the discharge mechanism is provided on the Evodia rutaecarpa transplanting tube (5) and the round rod (1). The emission mechanism includes a round tube (4), an annular airbag (6), a piston rod (7), a second pedal (8), and a spring (9). An installation groove is provided on the inner side of the Evodia rutaecarpa transplanting tube (5). An annular airbag (6) is fixedly installed in the installation groove. The bottom of the first pedal (2) is fixedly connected to the round tube (4). One end of the round tube (4) is sealed to the Evodia rutaecarpa transplanting tube (5).

2. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 1, characterized in that: An inflation hole is provided on the outer side of the annular airbag (6), and an air hole two (11) is provided on the Evodia rutaecarpa transplanting tube (5). The two ends of the air hole two (11) are respectively connected to the inflation hole and the round tube (4).

3. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 1, characterized in that: The pedal (2) has an air hole (10), one end of which is connected to the round tube (4).

4. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 3, characterized in that: One end of the round rod (1) has a cavity, which is connected to the air hole (10).

5. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 4, characterized in that: A piston rod (7) is slidably connected inside the cavity. One end of the piston rod (7) is fixedly connected to a pedal (8). The pedal (8) is slidably connected to the round rod (1).

6. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 5, characterized in that: A sliding groove is provided on the round rod (1), the sliding groove is connected to the cavity, and the pedal (8) slides in the sliding groove.

7. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 5, characterized in that: The round rod (1) has an installation groove 2, and a spring (9) is fixedly installed in the installation groove 2. One end of the spring (9) is fixedly connected to the piston rod (7).

8. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 7, characterized in that: A sealing ring is fixedly fitted at one end of the piston rod (7).

9. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 1, characterized in that: The annular airbag (6) is adapted to the Evodia rutaecarpa transplant tube (5).

10. The safe seedling transplanting device for Evodia rutaecarpa plantation according to claim 1, characterized in that: The annular airbag (6) is elastic.