Protective device for low-altitude remote identification receiving station

By combining the connection design of the support column and the support block with the rotating parts and the storage mechanism, the installation difficulties and stability problems of the low-altitude remote identification receiving station protection device are solved, and the stability and flexibility are improved.

CN224154215UActive Publication Date: 2026-04-21TIANJIN LINGZHIHAOYUE AVIATION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-08
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

The existing protective devices for low-altitude long-range identification and reception stations, which use fences, have problems with installation difficulties and instability.

Method used

A protective mechanism comprising a support column, a support block, a mounting plate, a mounting block, and a protective net is designed. By connecting the support column and the support block, and utilizing the combination of rotating parts, auxiliary plates, and connecting parts, the protective net can be conveniently installed and stably positioned. The support feet are height-adjustable, and the storage mechanism and connecting positioning mechanism improve the flexibility of use.

Benefits of technology

It enables non-destructive installation, improves the stability and flexibility of the protective device, prevents animals from entering, and facilitates disassembly and storage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of receiving station protection, in particular to a low-altitude remote identification receiving station protection device which comprises a receiving station body, a supporting column and a protection mechanism, the supporting column is arranged below the receiving station body, and the protection mechanism for protecting the receiving station body is arranged on the outer side of the supporting column. The protection mechanism comprises supporting blocks, mounting plates and mounting blocks, the supporting blocks are arranged on the outer sides of the supporting columns and connected with the supporting columns, the mounting plates are arranged on the outer sides of the supporting blocks and evenly distributed on the outer sides of the supporting columns, and the mounting blocks are connected to the upper portions of the mounting plates. According to the low-altitude remote identification receiving station protection device, through connection of the supporting blocks and the supporting columns, the protection mechanism can keep the stability of the self-state by means of the supporting columns of the receiving station body, on one hand, damage-free installation is achieved without damaging the supporting face around the receiving station body during installation, and on the other hand, the overall stability of the protection mechanism can be improved.
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Description

Technical Field

[0001] This utility model relates to the field of receiving station protection technology, specifically a low-altitude long-range identification receiving station protection device. Background Technology

[0002] When receiving and processing signals from devices such as drones, information can be processed through a low-altitude remote identification receiving station. The receiving station is set up outdoors to receive signals, and protective devices can be added to protect the receiving station.

[0003] The prior art (Chinese patent application number CN202323018459.8, published on June 4, 2024) discloses a satellite receiving antenna protection device, mainly comprising a satellite receiving antenna body, a lifting support mechanism, and a stabilizing mechanism. The top end of the lifting support mechanism is fixedly connected to the rear side of the satellite receiving antenna body. The lifting support mechanism is used to adjust and support the height of the satellite receiving antenna body. The stabilizing mechanism is connected to the lifting support mechanism and is used to stabilize the satellite receiving antenna body during lifting and lowering. During the lifting and lowering process of the lifting rod, the lifting plate moves up and down with the lifting rod, and the lifting plate drives the stabilizing support rod to move up and down. Through the supporting action of the stabilizing support rod, the lifting rod can be stabilized, thereby preventing a decrease in the stability of the satellite receiving antenna when adjusting its height, thus providing stability and protection for the satellite receiving antenna.

[0004] Currently, some low-altitude remote identification receiving stations are protected by fencing. However, the fencing needs to be connected and fixed to the support surface, which makes initial installation difficult. Furthermore, placing the fencing directly outside the receiving station makes it difficult to maintain its stability, thus affecting its protective effect. Summary of the Invention

[0005] The purpose of this utility model is to provide a protective device for low-altitude remote identification receiving stations, in order to solve the problems mentioned in the background art. Currently, the protection of low-altitude remote identification receiving stations also uses the method of guardrails, but the guardrails need to be connected and fixed to the support surface, which makes the initial installation difficult. In addition, the stability of the guardrails is difficult to maintain when they are placed directly outside the receiving station.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a low-altitude long-range identification receiving station protection device, comprising a receiving station body, a support column, and a protection mechanism. The support column is disposed below the receiving station body, and a protection mechanism for protecting the receiving station body is disposed on the outer side of the support column. The protection mechanism includes a support block, a mounting plate, and a mounting block. The support block is disposed on the outer side of the support column and connected to the support column, and a mounting plate is disposed on the outer side of the support block. The mounting plates are evenly distributed on the outer side of the support column, and a mounting block is connected above the mounting plate. A protective net is disposed on the outer side of the mounting block, and a storage mechanism is disposed at one end of the protective net, while a connecting positioning mechanism is disposed at the other end of the protective net. The protective net is connected to the mounting block at an adjacent position through the connecting positioning mechanism to form a protective structure.

[0007] To further optimize this technical solution, the support block includes a first connecting block and a second connecting block. The first connecting block and the second connecting block have a symmetrical structural design, and a connecting mechanism is provided between the first connecting block and the second connecting block to connect the first connecting block and the second connecting block to the outside of the support column.

[0008] To further optimize this technical solution, the connecting mechanism includes a rotating component, an auxiliary plate, a connecting component, and a connecting cap;

[0009] A rotating component is disposed at the end of the first connecting block, and the first connecting block forms a rotatable connection with the second connecting block through the rotating component;

[0010] Auxiliary plates are fixed to the ends of the first connecting block and the second connecting block, respectively;

[0011] A connector is fixed to the surface of an auxiliary plate at the end of the second connecting block, and the connector passes through the surface of the auxiliary plate at the end of the first connecting block.

[0012] A connecting cap is placed on the outside of the connector and between the connector to form a threaded connection.

[0013] To further optimize this technical solution, a support foot is provided below the mounting plate, and the support foot has a height-adjustable structure design.

[0014] To further optimize this technical solution, a positioning block is provided below the mounting block, and a connecting shaft is provided above the positioning block. The connecting shaft and the mounting block form a rotatable connection. A positioning groove is provided above the mounting plate. The positioning groove and the positioning block form a concave-convex fit structure. A connecting groove is provided inside the positioning block. A locking rod is provided inside the positioning groove. The locking rod and the mounting plate form a threaded connection. The locking rod and the connecting groove are connected to limit the positioning block.

[0015] To further optimize this technical solution, the storage mechanism includes a storage shaft and a torsion spring. The storage shaft and the mounting block form a rotatable connection, and the storage shaft is connected to the end of the protective net. The torsion spring is installed at the end of the storage shaft to provide rotational restoring force for the storage shaft.

[0016] To further optimize this technical solution, the connection positioning mechanism includes a connecting seat, a connecting head, a slot, and a release slot. The connecting seat is fixed to the end of the protective net, and a "T"-shaped connecting head is fixed on the outer surface of the connecting seat. The surface of the mounting block has a slot that forms an up-and-down sliding structure with the connecting head, and a release slot is connected above the slot.

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

[0018] (1) By connecting the support block and the support column, the protective mechanism can maintain its own stability with the help of the support column of the main body of the receiving station. On the one hand, it can achieve non-destructive installation without damaging the support surface around the main body of the receiving station during installation. On the other hand, it can also improve the overall stability of the protective mechanism and effectively prevent animals from entering the main body of the receiving station.

[0019] (2) The protective net can be easily pulled out for use by pulling the connecting seat. The connection of the connector and the slot can quickly position it in the pulled-out state. It is also easy to put it away afterwards, which improves the flexibility of the device. The mounting block and the mounting plate can be detached and can be stored or replaced separately later.

[0020] (3) The enclosure of the first connecting block and the second connecting block allows the support base to be easily assembled on the outside of the support column, making it convenient to install the support base on the outside of the support column and to disassemble it later. Attached Figure Description

[0021] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0022] Figure 2 This is a schematic diagram of the structure of this utility model from below;

[0023] Figure 3 This is a top view of the mounting plate structure of this utility model;

[0024] Figure 4 This is a three-dimensional structural diagram of the support block of this utility model;

[0025] Figure 5 This is a schematic diagram of the main cross-sectional structure of the mounting block of this utility model;

[0026] Figure 6 This utility model Figure 5 Enlarged structural diagram at point a;

[0027] Figure 7 This is a three-dimensional structural diagram of the release groove of this utility model.

[0028] In the diagram: 1. Main body of the receiving station; 2. Support column; 3. Support block; 301. First connecting block; 302. Second connecting block; 4. Mounting plate; 5. Mounting block; 6. Support foot; 7. Protective net; 8. Storage shaft; 9. Torsion spring; 10. Connecting seat; 11. Connector; 12. Slot; 13. Release slot; 14. Positioning block; 15. Connecting shaft; 16. Connecting slot; 17. Positioning slot; 18. Locking rod; 19. Rotating component; 20. Auxiliary plate; 21. Connecting component; 22. Connecting cap. Detailed Implementation

[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0030] Please see Figures 1-7 Example 1: This utility model provides the following technical solution: A low-altitude remote identification receiving station protection device, including a receiving station body 1, a support column 2, and a protection mechanism. The support column 2 is located below the receiving station body 1, and a protection mechanism is provided on the outside of the support column 2 to provide protection for the receiving station body 1. The protection mechanism includes a support block 3, a mounting plate 4, and a mounting block 5. The support block 3 is located on the outside of the support column 2 and connected to the support column 2. The mounting plate 4 is located on the outside of the support block 3. The mounting plates 4 are evenly distributed on the outside of the support column 2, and the mounting blocks 5 are connected above the mounting plates 4. A protective net 7 is located on the outside of the mounting blocks 5. A storage mechanism is provided at one end of the protective net 7, and a connecting positioning mechanism is provided at the other end of the protective net 7. The protective net 7 is connected to the mounting blocks 5 at adjacent positions through the connecting positioning mechanism to form a protective structure.

[0031] When in use, first install the support block 3 on the outside of the support column 2, then install the mounting block 5 on the top of the mounting plate 4, and then pull out the protective net 7 through the connecting positioning mechanism to connect it with the mounting block 5 in the adjacent position to form a protective effect. The device can obtain a stable anti-overturning effect through the support column 2, providing stable protection for the main body 1 of the receiving station.

[0032] Example 2: Based on Example 1, the support block 3 is disclosed, including a first connecting block 301 and a second connecting block 302. The first connecting block 301 and the second connecting block 302 are symmetrically designed, and a connecting mechanism is provided between the first connecting block 301 and the second connecting block 302 to connect the first connecting block 301 and the second connecting block 302 to the outside of the support column 2. The connecting mechanism includes a rotating component 19, an auxiliary plate 20, a connecting component 21, and a connecting cap 22. The rotating component 19 is located at the end of the first connecting block 301. 301 is rotatably connected to the first connecting block 301 and the second connecting block 302 by means of the rotating part 19. The auxiliary plate 20 is fixed to the ends of the first connecting block 301 and the second connecting block 302 respectively. The connector 21 is fixed to the surface of the auxiliary plate 20 at the end of the second connecting block 302 and passes through the surface of the auxiliary plate 20 at the end of the first connecting block 301. The connector cap 22 is provided on the outside of the connector 21 and forms a threaded connection with the connector 21. The mounting plate 4 is provided with a support foot 6 below it, and the support foot 6 is a height-adjustable structure design.

[0033] When installing the support block 3, the first connecting block 301 and the second connecting block 302 can be moved to the outside of the support column 2 and then rotated and merged so that the connector 21 passes through the auxiliary plate 20. Then, the connecting cap 22 is rotated and screwed onto the surface of the connector 21 to position the merged first connecting block 301 and the second connecting block 302 so that a stable connection is formed between them and the support column 2. When disassembly is required, the connecting cap 22 is unscrewed, and the first connecting block 301 and the second connecting block 302 are separated by rotation, so that they can be removed from the outside of the support column 2. The support foot 6 can provide auxiliary support for the bottom of the mounting plate 4. The support foot 6 can be installed by thread and its support height can be adjusted by rotation to adapt to the usage requirements.

[0034] Example 3: Based on Example 1, a positioning block 14 is provided below the mounting block 5, and a connecting shaft 15 is provided above the positioning block 14. The connecting shaft 15 and the mounting block 5 are rotatably connected. A positioning groove 17 is provided above the mounting plate 4. The positioning groove 17 and the positioning block 14 form a concave-convex fit structure. A connecting groove 16 is provided inside the positioning block 14. A locking rod 18 is provided inside the positioning groove 17. The locking rod 18 and the mounting plate 4 are threadedly connected. The locking rod 18 and the connecting groove 16 are connected to limit the positioning block 14. The storage mechanism includes... The storage shaft 8 and the torsion spring 9 form a rotatable connection between the storage shaft 8 and the mounting block 5, and the storage shaft 8 is connected to the end of the protective net 7. The torsion spring 9 is installed at the end of the storage shaft 8 to provide rotational reset force for the storage shaft 8. The connection positioning mechanism includes a connecting seat 10, a connecting head 11, a slot 12 and a release slot 13. The connecting seat 10 is fixed to the end of the protective net 7, and the outer surface of the connecting seat 10 is fixed with a "T"-shaped connecting head 11. The surface of the mounting block 5 is provided with a slot 12 that forms an up-and-down sliding structure with the connecting head 11, and the release slot 13 is connected above the slot 12.

[0035] Insert the positioning block 14 into the positioning groove 17 and lock it by connecting the locking rod 18 and the connecting groove 16 to complete the installation of the mounting block 5. After the mounting block 5 is installed, the protective net 7 can be pulled out by the connecting seat 10. Then, the connector 11 is placed into the slot 12 through the release groove 13 to position the connector 11 and keep the protective net 7 in the pulled-out state. When it needs to be retracted later, move the connector 11 up so that it enters the release groove 13 and can be taken out.

[0036] The contents not described in detail in this specification are existing technologies known to those skilled in the art.

[0037] In the description of this application, it should be noted that, unless otherwise explicitly specified and limited, the terms "set up," "install," 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. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0038] Although the present invention 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 the present invention should be included within the protection scope of the present invention.

Claims

1. A protective device for a low-altitude long-range identification receiving station, comprising a receiving station body (1), a support column (2) and a protective mechanism, wherein the support column (2) is disposed below the receiving station body (1), and a protective mechanism for providing protection for the receiving station body (1) is disposed on the outside of the support column (2); characterized in that The protective mechanism includes a support block (3), a mounting plate (4), and a mounting block (5). The support block (3) is located on the outside of the support column (2) and connected to the support column (2). The mounting plate (4) is located on the outside of the support block (3). The mounting plates (4) are evenly distributed on the outside of the support column (2). The mounting blocks (5) are connected above the mounting plates (4). A protective net (7) is located on the outside of the mounting blocks (5). A storage mechanism is located at one end of the protective net (7). A connection positioning mechanism is located at the other end of the protective net (7). The protective net (7) is connected to the mounting blocks (5) at adjacent positions through the connection positioning mechanism to form a protective structure.

2. The low-altitude remote identification receiving station protection device of claim 1, wherein: The support block (3) includes a first connecting block (301) and a second connecting block (302). The first connecting block (301) and the second connecting block (302) are designed in a symmetrical structure, and a connecting mechanism is provided between the first connecting block (301) and the second connecting block (302) to connect the first connecting block (301) and the second connecting block (302) to the outside of the support column (2).

3. The low-altitude remote identification receiving station shielding device of claim 2, wherein: The connecting mechanism includes a rotating part (19), an auxiliary plate (20), a connecting part (21), and a connecting cap (22); A rotating component (19) is disposed at the end of the first connecting block (301), and the first connecting block (301) is rotatably connected to the second connecting block (302) through the rotating component (19); Auxiliary plates (20) are fixed to the ends of the first connecting block (301) and the second connecting block (302), respectively; The connector (21) is fixed to the surface of the auxiliary plate (20) at the end of the second connecting block (302), and the connector (21) passes through the surface of the auxiliary plate (20) at the end of the first connecting block (301); A connecting cap (22) is provided on the outside of the connector (21) and between the connector (21) to form a threaded connection.

4. The low-altitude remote identification receiving station shield of claim 1, wherein: The mounting plate (4) is provided with a support foot (6) below it, and the support foot (6) is a height-adjustable structure design.

5. The low-altitude remote identification receiving station shielding device of claim 1, wherein: A positioning block (14) is provided below the mounting block (5), and a connecting shaft (15) is provided above the positioning block (14). The connecting shaft (15) and the mounting block (5) are rotatably connected. A positioning groove (17) is provided above the mounting plate (4). The positioning groove (17) and the positioning block (14) form a concave-convex fit structure. A connecting groove (16) is provided inside the positioning block (14). A locking rod (18) is provided inside the positioning groove (17). The locking rod (18) and the mounting plate (4) are threadedly connected. The locking rod (18) and the connecting groove (16) are connected to limit the positioning block (14).

6. The low-altitude remote identification receiving station shield of claim 5, wherein: The storage mechanism includes a storage shaft (8) and a torsion spring (9). The storage shaft (8) and the mounting block (5) are rotatably connected, and the ends of the storage shaft (8) and the protective net (7) are connected. The torsion spring (9) is installed at the end of the storage shaft (8) to provide rotational restoring force for the storage shaft (8).

7. The low-altitude remote identification receiving station shielding apparatus of claim 6, wherein: The connection positioning mechanism includes a connecting seat (10), a connecting head (11), a slot (12), and a release slot (13). The connecting seat (10) is fixed to the end of the protective net (7), and the outer surface of the connecting seat (10) is fixed with a "T"-shaped connecting head (11). The surface of the mounting block (5) is provided with a slot (12) that forms an up-and-down sliding structure with the connecting head (11), and the release slot (13) is connected above the slot (12).