Root lifting device for potted plants

By using the framework and infusion system of the bonsai plant root lifting device, the growth of new roots is guided, solving the problem of difficult control of the root shape of traditional bonsai plants, and achieving precise control of root shape and improved operation efficiency.

CN224022441UActive Publication Date: 2026-03-24HEBEI UNIV OF ENG
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Traditional bonsai plant root shaping is difficult to control, resulting in difficult and time-consuming post-processing.

Method used

A root-raising device for bonsai plants is used, including a container body and an internal skeleton. The skeleton is equipped with infusion tubes and through holes. Nutrient solution or water is introduced through the infusion tubes to guide the new roots to grow in a preset position, direction and trend. Nutrient solution or water is collected in a specific position by using the through holes to achieve preliminary shaping control of the new roots.

Benefits of technology

It reduces the difficulty of manually processing new roots in the later stages, saves manpower and resources, and improves the control precision and efficiency of root system shaping.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of plant cultivation containers, and discloses a bonsai plant root lifting device which comprises a container body internally provided with a framework, nutrient soil is arranged on the periphery of the framework, the framework is provided with an opening connected with a liquid conveying pipe, a channel communicated with the opening is formed in the framework, and a plurality of through holes communicated with the channel are formed in the side wall of the framework. And the plurality of through holes are mutually staggered and are arranged in a three-dimensional manner. According to the utility model, nutrient solution or water is guided into the channel inside the framework through the liquid conveying pipe, so that the nutrient solution or the water flows to the corresponding position in the nutrient soil through the preset through holes, and the nutrient solution or the water is gathered at a certain position, so that a new root system can be guided to grow basically according to the preset position, direction and trend; therefore, the modeling of the new root system can be effectively and preliminarily controlled, the operation difficulty during later manual treatment is reduced, and manpower and material resources are saved.
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Description

Technical Field

[0001] This utility model relates to the field of plant cultivation containers, and in particular to a root lifting device for bonsai plants. Background Technology

[0002] Bonsai, as an important part of my country's gardens and horticulture, has multiple values ​​including landscape, culture, and spiritual aspects. The shaping control of bonsai mainly involves shaping the branches, leaves, trunk, and roots separately to achieve an overall artistic effect that satisfies people's aesthetic appreciation.

[0003] In traditional techniques, the main method for treating the roots of bonsai plants is to use a high soil mound. This involves wrapping the roots and trunk with a cylindrical object to encourage the growth of new roots. Once the roots have grown, the high soil mound is removed, and then the roots are gradually shaped and beautified artificially.

[0004] However, the shape of the newly grown roots is difficult to control in the traditional techniques mentioned above, making the subsequent manual processing difficult, time-consuming and labor-intensive. Utility Model Content

[0005] Based on the above problems, the purpose of this utility model is to provide a root lifting device for bonsai plants to solve the problems existing in the prior art.

[0006] The present invention adopts the following technical solution:

[0007] This utility model provides a root-lifting device for bonsai plants, comprising:

[0008] The container body has an internal skeleton, and the skeleton is surrounded by nutrient soil.

[0009] The frame has an opening connected to the infusion tube, and an internal channel connected to the opening. The side wall of the frame has multiple through holes connected to the channel, and the multiple through holes are staggered and arranged in a three-dimensional layout.

[0010] Furthermore, the skeleton includes two second parts, which are detachably connected by a connector.

[0011] Furthermore, the second segment includes multiple spaced vertical pipes, which are connected by multiple horizontal pipes and multiple vertical pipes. The ends of the horizontal pipes and / or the vertical pipes of two second segments that are close to each other are detachably connected by the connector.

[0012] Furthermore, the connector is configured as a sleeve, and the two adjacent ends of the horizontal tubes and / or the vertical tubes of the two second parts are respectively inserted into and connected to the sleeve.

[0013] Furthermore, the container body includes multiple first parts that are detachably connected from top to bottom.

[0014] Furthermore, each of the adjacent first parts is provided with a connecting block on the side that is close to each other. One of the connecting blocks is provided with a plug rod, and the other connecting block is provided with a socket. The plug rod and the socket are inserted into each other.

[0015] Furthermore, the top or bottom of the insertion rod is provided with a pin hole, in which a limiting pin is detachably connected, and the insertion rod is limited to the insertion hole by the limiting pin.

[0016] Furthermore, the top of the container body is provided with an opening, and the side wall is provided with multiple vent holes. The infusion tube extends to the outside of the container body through the opening and / or the vent holes at the end away from the opening.

[0017] Compared with the prior art, the beneficial technical effects of this utility model are as follows:

[0018] Once the roots of a bonsai plant are inserted into the nutrient soil, nutrient solution or water is introduced into the channels inside the framework through infusion tubes during the subsequent cultivation process. The nutrient solution or water flows through pre-set holes to the corresponding positions in the nutrient soil. By accumulating the nutrient solution or water in a certain place, the new root system can be guided to grow in a basically preset position, direction and trend. This allows for effective initial control over the shape of the new root system, reduces the difficulty of later manual processing, and saves manpower and resources. Attached Figure Description

[0019] The present invention will be further described below with reference to the accompanying drawings.

[0020] Figure 1 This is a cross-sectional view of the root-lifting device for bonsai plants according to this utility model.

[0021] Figure 2 This is a partial three-dimensional structural diagram of the skeleton of this utility model;

[0022] Figure 3 This is a partial sectional view of the skeleton of this utility model;

[0023] Figure 4 This is a schematic diagram of the external three-dimensional structure of the container body of this utility model.

[0024] Explanation of reference numerals in the attached drawings: 1. Container body; 11. First sub-section; 101. Vent hole; 111. Connecting block; 112. Insert rod; 2. Frame; 21. Second sub-section; 201. Channel; 202. Through hole; 211. Vertical pipe; 212. Horizontal pipe; 213. Vertical pipe; 214. Rubber sleeve; 22. Connector; 3. Infusion tube. Detailed Implementation

[0025] To make the technical problems, technical solutions and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments.

[0026] like Figures 1-4 As shown, this embodiment discloses a root lifting device for bonsai plants, including a container body 1. The container body 1 has a frame 2 inside, and nutrient soil is arranged around the frame 2. The frame 2 has an opening connected to an infusion tube 3, and the inside has a channel 201 connected to the opening. The side wall of the frame 2 has multiple through holes 202 connected to the channel 201. The multiple through holes 202 are staggered and arranged in a three-dimensional layout.

[0027] In this embodiment, the infusion tube 3 is made of soft rubber. The specific number and layout of the through holes 202 are determined according to the pre-planned position, direction and trend of the newly grown roots. After the roots of the bonsai plant are inserted into the nutrient soil, in the subsequent cultivation process, nutrient solution or water is introduced into the channel 201 inside the skeleton 2 through the infusion tube 3, so that the nutrient solution or water flows to the corresponding position in the nutrient soil through the pre-set through holes 202. By accumulating the nutrient solution or water in a certain place, the newly grown roots can be guided to grow in a basically preset position, direction and trend.

[0028] By adopting this scheme and setting up the above structure, the shape of the new root system can be effectively controlled in the early stages, thereby reducing the difficulty of subsequent manual processing and saving manpower and resources.

[0029] Further optimize the plan, such as Figure 2 As shown, the skeleton 2 includes two second parts 21, which are detachably connected by a connector 22.

[0030] In this embodiment, after the new roots take root in the nutrient soil, the nutrient soil, along with the framework 2 and the plant as a whole, needs to be separated from the container body 1. Then, the nutrient soil and framework 2 around the roots are removed. By setting the framework 2 as a detachable structure, the convenience of removing the framework 2 can be improved.

[0031] Further optimize the plan, such as Figure 2 As shown, the second segment 21 includes multiple spaced vertical pipes 211, which are connected by multiple horizontal pipes 212 and multiple vertical pipes 213. The ends of the horizontal pipes 212 and / or vertical pipes 213 of the two second segments 21 are detachably connected by a connector 22.

[0032] In this embodiment, the number and spacing of the riser 211, horizontal pipe 212, and longitudinal pipe 213 are set according to the volume of the container body 1 and the pre-designed shape of the new root system. All are made of aluminum. The ends of the horizontal pipes 212 of the two second parts 21 that are close to each other are connected by a connector 22. In other optional embodiments, the ends of the longitudinal pipes 213 of the two second parts 21 that are close to each other may be connected by a connector 22, or all or part of the ends of the longitudinal pipes 213 and all or part of the ends of the horizontal pipes 212 of the two second parts 21 may be connected by a connector 22.

[0033] Further optimize the plan, such as Figure 3 As shown, each second sub-body 21 has a channel 201 inside and a through hole 202 communicating with the channel 201 on its outer wall. The two channels 201 are either connected to each other or disconnected from each other.

[0034] When the two channels 201 are connected to each other, an opening can be set on one of the second parts 21 or on both of the second parts 21; when the two channels 201 are disconnected from each other, an opening is set on both of the second parts 21.

[0035] In this embodiment, it is preferable that the two channels 201 are interconnected and that both second parts 21 are provided with openings. This arrangement can improve the flexibility of adding nutrient solution or water.

[0036] Specifically, the opening is set at the top of the riser 211 in each second segment 21, the bottom of the riser 211 in each second segment 21 and the ends of the horizontal tubes 212 in the two second segments 21 that are far apart from each other are closed. The inner cavity of the horizontal tube 212 and the longitudinal tube 213 in each second segment 21 are connected to the inner cavity of the riser 211 to form a channel 201. The two channels 201 are connected at the connector 22. The position, number and orientation of the through holes 202 are set according to the preset shape of the new root system. In this embodiment, the through holes 202 are directly opened at the corresponding positions on the side wall of the riser 211, the horizontal tube 212 or the longitudinal tube 213. As an optional embodiment, multiple first holes may be provided on the side walls of the riser 211, horizontal pipe 212, or vertical pipe 213. The multiple first holes on the riser 211, horizontal pipe 212, or vertical pipe 213 may be sealed by a rubber sleeve 214. According to the preset position, number, and orientation of the through hole 202, a second hole corresponding to the corresponding first hole may be opened on the rubber sleeve 214. The first hole and the second hole together form the required through hole 202. With this configuration, when raising the roots of bonsai plants of different shapes, the original rubber sleeve 214 can be removed, the rubber sleeve 214 can be re-wrapped, and the second hole can be re-opened as needed. In this way, the skeleton 2 formed by the riser 211, horizontal pipe 212, and vertical pipe 213 can be reused.

[0037] In a further optimized design, connector 22 is configured as a sleeve, and the ends of the horizontal tubes 212 and / or vertical tubes 213 of the two second parts 21 that are close to each other are respectively inserted into the sleeve.

[0038] In this embodiment, it is preferable that the ends of the horizontal tubes 212 of the two second parts 21 that are close to each other are respectively inserted into the sleeve. In other optional embodiments, the ends of the vertical tubes 213 of the two second parts 21 that are close to each other are respectively inserted into the sleeve. Alternatively, all or part of the ends of the vertical tubes 213 of the two second parts 21 that are close to each other, and all or part of the ends of the horizontal tubes 212 that are close to each other are respectively inserted into the sleeve. After the above insertion, there is a certain damping force between the horizontal tubes 212 and / or the vertical tubes 213 and the sleeve, which can improve the effect of the insertion connection.

[0039] To further optimize the design, connector 22 is configured as a clamp. When the ends of the horizontal tubes 212 and / or vertical tubes 213 of the two second parts 21 are inserted into the clamps and then tightened with bolts, the stability of the connection can be further improved.

[0040] Further optimize the plan, such as Figure 4 As shown, the container body 1 includes a plurality of first sub-parts 11 that are detachably connected from top to bottom.

[0041] In this embodiment, after the new roots take root in the nutrient soil, the nutrient soil, along with the skeleton 2 and the plant as a whole, needs to be separated from the container body 1. When separating, the first part 11 can be dismantled from top to bottom. This setting can reduce the difficulty of separating the nutrient soil from the container body 1.

[0042] In a further optimized design, each of the adjacent first segments 11 is provided with a connecting block 111 on one side that is close to each other. One of the connecting blocks 111 is provided with a plug rod 112, and the other connecting block 111 is provided with a socket. The plug rod 112 is inserted into the socket.

[0043] In this embodiment, each first segment 11 can have multiple connecting blocks 111, which are fixed at circumferential intervals along the first segment 11. The connecting blocks 111 on adjacent first segments 11 correspond one-to-one, and the insertion rod 112 is vertically fixed to the top surface of the lower connecting block 111, with the insertion hole correspondingly located on the upper connecting block 111. Alternatively, the insertion rod 112 can be vertically fixed to the bottom surface of the upper connecting block 111, with the insertion hole correspondingly located on the lower connecting block 111. When the insertion rod 112 is fully inserted into the insertion hole, the outer diameter of the insertion rod 112 at that point is slightly larger than the diameter of the insertion hole, and the insertion hole can undergo corresponding elastic deformation; this configuration improves the stability of the connection.

[0044] In a further optimized design, the top or bottom of the insertion rod 112 is provided with a pin hole, in which a limit pin can be detachably connected, and the insertion rod 112 is limited to the insertion hole by the limit pin.

[0045] In this embodiment, when the insertion rod 112 is vertically fixed to the top surface of the connecting block 111 located below, the pin hole is located at the top of the insertion rod 112; when the insertion rod 112 is vertically fixed to the bottom surface of the connecting block 111 located above, the pin hole is located at the bottom of the insertion rod 112; the limiting pin can be set as a cotter pin. After the insertion rod 112 is inserted into the insertion hole, the stability after connection can be further improved by installing the limiting pin in the pin hole.

[0046] In a further optimized design, the top of the container body 1 is provided with an opening, and the side wall is provided with multiple vent holes 101. The infusion tube 3 extends to the outside of the container body 1 through the opening and / or vent holes 101 at the end away from the opening.

[0047] In this embodiment, the container body 1 is made of soft rubber, which provides a certain degree of support. The container body 1 has an overall shape that is smaller at the top and larger at the bottom, with sufficient space in the lower part for root growth. The opening and the ventilation hole 101 can both allow for ventilation and provide space for the infusion tube 3 to enter and exit the container body 1. The number of infusion tubes 3 is mainly determined by the specific arrangement of the through holes 202 and whether the internal channels 201 of the two second parts 21 are interconnected. It can be set to one or more. As an optional embodiment, the container body 1 can also be relatively uniform in size, with sufficient space in the lower part for root growth.

[0048] The embodiments described above are merely preferred embodiments of the present utility model and are not intended to limit the scope of the present utility model. Various modifications and improvements made to the technical solutions of the present utility model by those skilled in the art without departing from the spirit of the present utility model should fall within the protection scope defined by the claims of the present utility model.

Claims

1. A root-lifting device for bonsai plants, characterized in that: include: The container body (1) has a frame (2) inside, and nutrient soil is arranged around the frame (2). The frame (2) is provided with an opening connected to the infusion tube (3), and the interior is provided with a channel (201) connected to the opening. The side wall of the frame (2) is provided with multiple through holes (202) connected to the channel (201). The multiple through holes (202) are staggered and arranged in a three-dimensional layout.

2. The root-lifting device for bonsai plants according to claim 1, characterized in that: The frame (2) includes two second parts (21), which are detachably connected by a connector (22).

3. The root-lifting device for bonsai plants according to claim 2, characterized in that: The second sub-body (21) includes multiple spaced vertical pipes (211), which are connected by multiple horizontal pipes (212) and multiple vertical pipes (213). The ends of the horizontal pipes (212) and / or the vertical pipes (213) of two second sub-body (21) that are close to each other are detachably connected by the connector (22).

4. The root-lifting device for bonsai plants according to claim 3, characterized in that: The connector (22) is configured as a sleeve, and the ends of the horizontal tubes (212) and / or the vertical tubes (213) of the two second parts (21) that are close to each other are respectively inserted into the sleeve.

5. The root-lifting device for bonsai plants according to claim 1, characterized in that: The container body (1) includes a plurality of first sub-parts (11) that are detachably connected from top to bottom.

6. The root-lifting device for bonsai plants according to claim 5, characterized in that: Each of the adjacent first splits (11) has a connecting block (111) on one side that is close to each other. One of the connecting blocks (111) has a plug rod (112) and the other connecting block (111) has a socket. The plug rod (112) is inserted into the socket.

7. The root-lifting device for bonsai plants according to claim 6, characterized in that: The top or bottom of the insertion rod (112) is provided with a pin hole, and a limiting pin is detachably connected in the pin hole. The insertion rod (112) is limited to the insertion hole by the limiting pin.

8. The root-lifting device for bonsai plants according to claim 1, characterized in that: The container body (1) has an opening at the top and multiple vent holes (101) on the side wall. The infusion tube (3) extends to the outside of the container body (1) through the opening and / or the vent holes (101) at the end away from the opening.