Foldable ecological red line boundary marking pile

By designing foldable ecological red line boundary marker posts, and using an assembled structure and laser, the problem of electronic posts tilting and collapsing in silt areas was solved, achieving stability and accuracy of ecological red line marking and adapting to the adjustment needs of different ecological boundaries.

CN224186642UActive Publication Date: 2026-05-01HUBEI YINGCHENG ENVIRONMENTAL PROTECTION CONSULTING SERVICE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUBEI YINGCHENG ENVIRONMENTAL PROTECTION CONSULTING SERVICE CO LTD
Filing Date
2025-05-30
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

When used in silty areas, electronic stakes are prone to tilting or collapsing, resulting in unclear ecological red line boundary markings and affecting the effective implementation of ecological protection measures.

Method used

Design a foldable ecological red line boundary marker post, which adopts an assembled structure including a post body, drill rod, assembled control box, sleeve, adjusting arm, telescopic component and laser. The tilt angle and extension direction are adjusted by folding sleeve to ensure the stability and accuracy of the marker.

Benefits of technology

It improves the stability and reliability of marker posts in harsh environments, ensures the accuracy and convenience of ecological red line marking, and adapts to the adjustment needs of different ecological boundary lines.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a foldable ecological red line boundary marking pile, which belongs to the field of boundary marking piles and is characterized in that the lower end of a pile body is connected with a drill rod and is nailed into an ecological boundary marking area through the drill rod, the upper end of the pile body is connected with an assembled control box, and the side wall of the pile body is connected with a lower hoop and an upper hoop. The lower hoop is connected with a first adjusting arm through a lower connecting piece, the upper hoop is connected with a telescopic assembly through an upper connecting piece, the intersection of the first adjusting arm and the telescopic assembly is connected with a second adjusting arm, and the upper hoop is connected with a folding sleeve through a rotating shaft. The designed folding mechanism ensures the stability and reliability of the folding sleeve in the operation process, and meanwhile, the stretching direction and the inclination angle are allowed to be adjusted so as to adapt to different ecological boundary lines. The laser is fixed on the folding sleeve, emits red lines for identification, and is protected from being damaged due to the storage design, so that the stability and the reliability during use are ensured. The direction of the red line can be flexibly and accurately changed by adjusting the inclination angle.
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Description

A foldable ecological red line boundary marker post Technical Field

[0001] This utility model relates to the field of boundary marker posts, and in particular to a foldable ecological red line boundary marker post. Background Technology

[0002] Ecological red line boundary markers, or simply boundary stakes, are important physical markers of ecological protection red lines. Their primary purpose is to clearly define the boundaries of these red lines, issuing a warning to the public that they have entered these areas and that the ecological environment cannot be damaged. Simultaneously, they provide a foundation for the long-term management of ecological protection red lines, assisting relevant departments in supervision and enforcement. In some regions, virtual electronic boundaries such as electronic boundary stakes and electronic fences are also established based on actual needs to further enhance the effectiveness of ecological protection.

[0003] In current ecological protection efforts, the delineation and marking of ecological red lines are crucial. To clearly define the boundaries of these important ecological areas, stone stakes or electronic stakes are commonly used as marking methods. Stone stakes, as a traditional marking method, are widely used in many areas due to their stability and durability. Electronic stakes, on the other hand, are a more modern marking method, using sound-based fencing to mark ecological red line boundaries, and in some cases, they are more efficient and accurate than traditional stone stakes.

[0004] However, the application of electronic bollards in specific ecological areas, such as silty areas, faces considerable challenges. The unique geological conditions of silty areas, with loose soil and high water content, make electronic bollards prone to tilting or even collapsing during installation and maintenance. This instability prevents the bollards from reliably maintaining their original position and angle, resulting in unclear boundary markings for the sound-based fencing. This blurred boundary marking not only weakens the warning effect but also makes the ecological red line definition unclear, thus affecting the effective implementation of ecological protection measures. Summary of the Invention

[0005] The main purpose of this utility model is to provide a foldable ecological red line boundary marker post, which can effectively solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0007] A foldable ecological red line boundary marker post includes a post body, a drill rod connected to the lower end of the post body and driven into the ecological boundary marking area through the drill rod, an assembled control box connected to the upper end of the post body, and a lower sleeve and an upper sleeve connected to the side wall of the post body. A first adjusting arm is connected to the lower sleeve through a lower connector, and a telescopic component is connected to the upper sleeve through an upper connector. A second adjusting arm is connected at the intersection of the first adjusting arm and the telescopic component. A folding sleeve is connected to the upper sleeve through a pivot, and the folding sleeve is connected to the second adjusting arm through a connector. The tilt angle of the folding sleeve is adjusted by the telescopic component, the adjusting arm, and the connector.

[0008] The folding sleeve has a fixing hoop at the opening, and a laser is connected to the fixing hoop. The laser emits a red line for easy marking, and the red line can be adjusted by tilting the folding sleeve.

[0009] In an optional embodiment of this application, both the upper and lower sleeves are designed in a "C" shape, with multiple upper sleeves distributed in a ring on the pile body and fixed by bolts, and multiple lower sleeves distributed in a ring on the pile body and fixed by bolts. Anti-slip pads are provided between the upper and lower sleeves and the pile body.

[0010] In an optional embodiment of this application, the outer walls of the upper and lower sleeves are provided with protruding blocks, the folding sleeve contacts the protruding blocks, and the folding sleeve and the protruding blocks are connected by a rotating shaft and a limiting ring. The cross-section of the folding sleeve is designed in the shape of a "C".

[0011] In an optional embodiment of this application, the fixing hoop is connected to the laser by threads, and the fixing hoop is fixed to the folding sleeve by bolts. The laser is housed in the folding sleeve, and the tail wire of the laser is laid along the folding sleeve and passes through the wire hole on the side wall of the pile body, extending to the assembled control box and connecting to the circuit board and the battery.

[0012] In an optional embodiment of this application, the telescopic component consists of a base tube and a screw rod. The screw rod is inserted into the base tube and connected by a thread to adjust the length of both. The ends of the base tube and the screw rod are T-keys and T-rings, which enable the telescopic component to be connected movably.

[0013] In an optional embodiment of this application, the telescopic component is an electric push rod, with a rotating shaft and a limiting ring at both ends of the electric push rod. The telescopic component is movably connected through the rotating shaft and the limiting ring, and the wire of the electric push rod is inserted into the wire hole on the side wall of the pile.

[0014] In an optional embodiment of this application, four folding sleeves are arranged in a ring on the pile body and driven into the ecological boundary marking area by a drill rod, adjusting the extension direction of the folding sleeves so that the extension direction is aligned with the ecological boundary line.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] The folding mechanism design makes the folding sleeve more stable and smooth during folding and unfolding, while also ensuring its stability and reliability in the unfolded state. This design makes the marking of ecological red lines more accurate and convenient, and allows the extension direction and tilt angle of the folding sleeve to be adjusted according to actual needs to adapt to different ecological boundary lines.

[0017] The marker posts adopt an assembly-type design, making the installation and disassembly of the entire device more convenient and quick. At the same time, the "C"-shaped design of the upper and lower sleeves, as well as the anti-slip pads, ensure a tight fit between the marker posts and the ground, preventing slippage in harsh environments and improving the stability and reliability of the entire device.

[0018] The laser is mounted on a folding sleeve via a fixing clamp, enabling convenient marking by emitting a red line. The laser's storage design prevents damage when not in use, while ensuring stability and reliability during operation. Adjusting the tilt angle of the folding sleeve changes the direction of the red line, making the marking of the ecological red line more flexible and accurate. Attached Figure Description

[0019] Figure 1 is a schematic diagram of the overall structure of this utility model;

[0020] Figure 2 is a side view of the overall structure of this utility model;

[0021] Figure 3 is a bottom view of the overall structure of this utility model;

[0022] Figure 4 is a diagram showing the overall structure of this utility model;

[0023] Figure 5 shows the telescopic component, adjusting arm, connector, folding sleeve, and laser of this utility model.

[0024] In the diagram: 1. Pile body; 2. Drill rod; 3. Assembled control box; 4. Lower sleeve; 5. Upper sleeve; 6. Lower connector; 7. Upper connector; 8. Telescopic assembly; 9. First adjusting arm; 10. Second adjusting arm; 11. Connector; 12. Folding sleeve; 13. Fixing clamp; 14. Laser. Detailed Implementation

[0025] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0026] As shown in Figures 1-5, a foldable ecological red line boundary marker post includes a post body 1. A drill rod 2 is connected to the lower end of the post body 1, which is then driven into the ecological boundary marking area. An assembled control box 3 is connected to the upper end of the post body 1. A lower sleeve 4 and an upper sleeve 5 are connected to the side walls of the post body 1. The lower sleeve 4 is connected to a first adjusting arm 9 via a lower connector 6, and the upper sleeve 5 is connected to a telescopic assembly 8 via an upper connector 7. A second adjusting arm 10 is connected at the intersection of the first adjusting arm 9 and the telescopic assembly 8. The upper sleeve 5 is connected to a folding sleeve 12 via a pivot, and the second adjusting arm 10 is connected to the folding sleeve 12 via a connector 11. The tilt angle of the folding sleeve 12 can be adjusted using the telescopic assembly 8, the adjusting arm, and the connector 11.

[0027] A fixing clamp 13 is connected to the opening of the folding sleeve 12. A laser 14 is installed on the fixing clamp 13. The red line emitted by the laser 14 achieves convenient marking, and the direction of the red line can be changed by adjusting the tilt angle of the folding sleeve 12. This design makes the marking of the ecological red line more accurate and convenient, while improving the stability and reliability of the marking.

[0028] Both the upper sleeve 5 and the lower sleeve 4 adopt a "C"-shaped design. Multiple upper sleeves 5 are distributed in a ring on the pile body 1 and are fixed with bolts; multiple lower sleeves 4 are also distributed in a ring on the pile body 1 and are fixed with bolts. Anti-slip pads are provided between the upper sleeves 5 and the lower sleeves 4 and the pile body 1.

[0029] This design not only ensures a tight fit between the upper sleeve 5 and the lower sleeve 4 and the pile body 1, but also effectively prevents the upper sleeve 5 and the lower sleeve 4 from sliding in harsh environments, such as rainy or snowy weather, thus ensuring the stability and reliability of the entire marker pile.

[0030] The outer walls of the upper sleeve 5 and the lower sleeve 4 are provided with protruding blocks. The folding sleeve 12 contacts the protruding blocks, and the connection between the folding sleeve 12 and the protruding blocks is achieved through a rotating shaft and a limiting ring. The cross-section of the folding sleeve 12 is designed in a "C" shape.

[0031] This design makes the folding sleeve 12 more stable and smooth during folding and unfolding, while also ensuring the stability and reliability of the folding sleeve 12 in the unfolded state. When two of the folding sleeves 12 are used, the other two are folded and inserted into the ground to enhance the stability of the pile body 1. When one of them is used, the other three folding sleeves 12 are inserted into the ground to make the pile body 1 secure.

[0032] The fixing hoop 13 is connected to the laser 14 by threads and fixed to the folding sleeve 12. The laser 14 is housed in the folding sleeve 12, and its tail wire is laid along the folding sleeve 12 and passes through the wire hole on the side wall of the pile body 1, extending to the assembled control box 3, and connected to the circuit board and the battery.

[0033] This design allows the laser 14 to be safely stored in the folding sleeve 12 when not in use, preventing damage to the laser 14 in harsh environments and ensuring the stability and reliability of the laser 14 during use.

[0034] The telescopic assembly 8 consists of a base tube and a screw. The screw is inserted into the base tube and connected by threads to adjust the length of both. T-keys and T-rings are located at the ends of the base tube and the screw, respectively, enabling the telescopic assembly 8 to be movably connected.

[0035] This design makes the telescopic component 8 more stable and smooth during the length adjustment process, while also ensuring the stability and reliability of the telescopic component 8 after adjustment.

[0036] The telescopic component 8 can also be an electric actuator. Both ends of the electric actuator are equipped with a rotating shaft and a limiting ring, which enable the telescopic component 8 to be movably connected. The electric actuator's wire is inserted into the wire hole in the side wall of the pile body 1.

[0037] This design makes the electric linear actuator more stable and smooth during operation, while also ensuring its stability and reliability after operation.

[0038] Four folding sleeves 12 are arranged in a ring on the pile body 1 and driven into the ecological boundary marking area through the drill rod 2. The extension direction of the folding sleeves 12 is adjusted so that they are directly facing the ecological boundary line.

[0039] This design makes the folding sleeve 12 more stable and smooth during the adjustment of its extension direction, while also ensuring the stability and reliability of the folding sleeve 12 after adjustment, making the marking of the ecological red line more accurate and convenient.

[0040] Connect drill rod 2 to the lower end of pile 1. Drive the assembled pile 1 into the ecological boundary marker area using drill rod 2. Connect the assembled control box 3 to the upper end of pile 1. Connect the lower sleeve 4 to the first adjusting arm 9 via the lower connector 6. Connect the upper sleeve 5 to the telescopic assembly 8 via the upper connector 7. Connect the second adjusting arm 10 at the intersection of the first adjusting arm 9 and the telescopic assembly 8. Connect the upper sleeve 5 to the folding sleeve 12 via a pivot. Connect the second adjusting arm 10 to the folding sleeve 12 via connector 11.

[0041] By operating the telescopic assembly 8, adjusting the arm, and connecting head 11, the tilt angle of the folding sleeve 12 is adjusted to change the direction of the red line emitted by the laser 14. The fixing clamp 13 is connected to the opening of the folding sleeve 12. The laser 14 is threaded onto the fixing clamp 13 and secured to the folding sleeve 12. The tail wire of the laser 14 is laid along the folding sleeve 12 and passes through the wire hole in the side wall of the pile body 1. The wire is extended to the assembled control box 3 and connected to the circuit board and battery.

[0042] If using the manual telescopic assembly 8, adjust the length via the threaded connection of the base tube and screw. If using an electric push rod, achieve a movable connection via a rotating shaft and a limiting ring, ensuring the wire passes through the wire hole on the side wall of the pile body 1. Arrange the upper sleeve 5 and lower sleeve 4 in a ring on the pile body 1 and secure them with bolts. Ensure anti-slip pads are provided between the upper sleeve 5 and lower sleeve 4 and the pile body 1. Provide a protrusion on the outer wall of the folding sleeve 12. Connect the folding sleeve 12 to the protrusion via a rotating shaft and a limiting ring. Ensure the cross-section of the folding sleeve 12 has a "C" shape to guarantee its stability during folding and unfolding.

[0043] Adjust the extension direction of the folding sleeve 12 as needed to align it with the ecological boundary line. If two folding sleeves 12 are used, insert two more folding sleeves 12 into the ground to enhance the stability of the pile 1. If one folding sleeve 12 is used, insert three more folding sleeves 12 into the ground to achieve the stability of the pile 1.

[0044] All standard parts used in this utility model can be purchased from the market, and irregular parts can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art, and the circuit connection adopts conventional connection methods in the prior art, which will not be described in detail here.

[0045] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and inventive concept of this utility model, should be included within the scope of protection of this utility model.

Claims

1. A foldable ecological red line boundary marker post, comprising a post body (1), characterized in that: The lower end of the pile (1) is connected to a drill rod (2), which is driven into the ecological boundary marking area. The upper end of the pile (1) is connected to an assembled control box (3). The side wall of the pile (1) is connected to a lower sleeve (4) and an upper sleeve (5). The lower sleeve (4) is connected to a first adjusting arm (9) via a lower connector (6). The upper sleeve (5) is connected to a telescopic component (8) via an upper connector (7). A second adjusting arm (10) is connected at the intersection of the first adjusting arm (9) and the telescopic component (8). The upper sleeve (5) is connected to a folding sleeve (12) via a pivot. The second adjusting arm (10) is connected to the folding sleeve (12) via a connector (11). The tilt angle of the folding sleeve (12) is adjusted by the telescopic component (8), the adjusting arm, and the connector (11). A fixing sleeve (13) is connected to the opening of the folding sleeve (12), and a laser (14) is connected to the fixing sleeve (13). A red line is emitted by the laser (14) to achieve convenient marking, and the red line is adjusted by tilting the folding sleeve (12).

2. The foldable ecological red line boundary marker post according to claim 1, characterized in that: The upper sleeve (5) and lower sleeve (4) are both designed in a "C" shape. Multiple upper sleeves (5) are distributed in a ring on the pile body (1) and fixed with bolts. Multiple lower sleeves (4) are distributed in a ring on the pile body (1) and fixed with bolts. Anti-slip pads are provided between the upper sleeves (5), lower sleeves (4) and the pile body (1).

3. The foldable ecological red line boundary marker post according to claim 2, characterized in that: The outer walls of the upper sleeve (5) and lower sleeve (4) are provided with protruding blocks. The folding sleeve (12) contacts the protruding blocks and is connected to the protruding blocks through a rotating shaft and a limiting ring. The cross-section of the folding sleeve (12) is designed in the shape of a "C".

4. The foldable ecological red line boundary marker post according to claim 3, characterized in that: The fixing hoop (13) is connected to the laser (14) by threads. The fixing hoop (13) is fixed to the folding sleeve (12) by bolts. The laser (14) is housed in the folding sleeve (12). The tail wire of the laser (14) is laid along the folding sleeve (12) and passes through the wire hole on the side wall of the pile body (1), extending to the assembled control box (3) and connecting to the circuit board and the battery.

5. A foldable ecological red line boundary marker post according to claim 4, characterized in that: The telescopic component (8) consists of a base tube and a screw. The screw is inserted into the base tube and connected by a thread to adjust the length of both. The ends of the base tube and the screw are T-keys and T-rings, which enable the telescopic component (8) to be connected in an active manner.

6. A foldable ecological red line boundary marker post according to claim 5, characterized in that: The telescopic component (8) is an electric push rod. Both ends of the electric push rod are provided with a rotating shaft and a limiting ring. The telescopic component (8) is connected in motion through the rotating shaft and the limiting ring. The electric push rod’s wire is inserted into the wire hole on the side wall of the pile body (1).

7. A foldable ecological red line boundary marker post according to claim 6, characterized in that: Four folding sleeves (12) are arranged in a ring on the pile body (1) and driven into the ecological boundary marking area by a drill rod (2). The extension direction of the folding sleeves (12) is adjusted so that the extension direction is directly opposite the ecological boundary line.