A wind and wave resistant cage

CN224761074UActive Publication Date: 2026-09-18SENHAI PASTORAL SONG (ZHEJIANG) OCEAN TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202521853686.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2026-09-18
Estimated Expiration
2035-08-29

AI Technical Summary

Technical Problem

[0003]上述结构中网衣固定设置于笼毂以及固定柱上,风浪冲击在网衣上时,网衣与笼毂连接处以及网衣与固定柱的连接处易因风浪的冲击而受到拉扯,导致网衣与笼毂连接处以及网衣与固定柱的易在风浪的冲击下损坏

Benefits of technology

[0017] This utility model, by adopting the above technical solutions, has significant technical effects: the movable plate set in the mounting groove can move within the mounting groove when the netting is impacted by wind and waves; the buffer set on the side wall of the mounting groove near the netting can reduce the moving speed of the movable plate, thereby reducing the probability of damage to the connection between the movable plate in the connecting plate and the netting under the impact of wind and waves; similarly, the connection between the movable plate set in the cage hub and the netting can also reduce the probability of damage to the netting near the cage hub when impacted by wind and waves through the buffer component, thus improving the service life of the netting.

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Abstract

This utility model relates to the field of cages and discloses a wave-resistant cage, including two coaxially arranged cage hubs, connecting plates circumferentially arranged between the two cage hubs with their ends respectively connected to the two cage hubs, and a net set between two adjacent connecting plates. Buffer components for reducing the impact on the net set are respectively provided between the net set and the connecting plates and between the net set and the cage hubs. The buffer components include mounting grooves on the connecting plates and cage hubs, a movable plate that can move within the mounting grooves on the side of the net set near the connecting plates and cage hubs, a buffer member between the mounting grooves and the connecting plates, and a through groove on the buffer member. When the net set is impacted, the movable plate moves within the mounting groove and squeezes the buffer member. At this time, the buffer member reduces the moving speed of the movable plate, thereby reducing the probability of damage to the connection between the connecting plate and the movable plate in the cage hub and the net set under the impact of wind and waves.
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Description

Technical Field

[0001] This utility model relates to the field of cages, and in particular to a wind and wave resistant cage. Background Technology

[0002] Chinese Patent No. CN206674806U discloses a wind and wave resistant cage, including a cage body. The cage body includes at least two annular cage hubs, each cage hub being coaxially arranged. A buoyancy device is provided between two adjacent cage hubs. The buoyancy device is provided with an inlet and an outlet, and both the inlet and the outlet are provided with valves. A net is provided between the cage hubs. A fixing post for fixing the net is provided on the cage hubs between adjacent buoyancy devices. The two ends of the fixing post are respectively fixedly connected to the two adjacent cage hubs, and the net is fixedly attached to the fixing post.

[0003] In the above structure, the mesh is fixedly installed on the cage hub and the fixed post. When wind and waves impact the mesh, the connection between the mesh and the cage hub and the connection between the mesh and the fixed post are easily pulled by the impact of the wind and waves, which can easily lead to damage to the connection between the mesh and the cage hub and the connection between the mesh and the fixed post under the impact of the wind and waves. Utility Model Content

[0004] This invention addresses the shortcomings of existing technologies where the connection between the netting and the cage hub, as well as the connection between the netting and the fixing posts, are easily damaged by the impact of wind and waves. It provides a wind and wave resistant cage that can reduce the probability of the netting being damaged by the impact of wind and waves.

[0005] To solve the above-mentioned technical problems, the present invention provides a solution through the following technical method: A wave-resistant gabion includes two coaxially arranged cage hubs, connecting plates circumferentially arranged between the two cage hubs with their ends respectively connected to the two cage hubs, and a gabion disposed between two adjacent connecting plates. Buffer components for reducing the impact on the gabion are respectively provided between the gabion and the connecting plates and between the gabion and the cage hubs. The buffer components include mounting grooves vertically arranged on the connecting plates and horizontally arranged on the cage hubs. Movable plates that can move within the mounting grooves as the gabion is impacted by wind and waves are provided at the ends of the gabion near the connecting plates and near the cage hubs, respectively. A buffer element is provided on the inner wall of the mounting groove near the gabion to buffer the movement of the movable plates when they move within the mounting groove due to the impact of the gabion. A through slot for the gabion to pass through is provided in the middle of the buffer element.

[0006] Using the above solution, the movable plate set in the mounting groove can move within the mounting groove when the netting is impacted by wind and waves. The buffer set on the side wall of the mounting groove near the netting can reduce the moving speed of the movable plate, thereby reducing the probability of damage to the connection between the movable plate and the netting in the connecting plate under the impact of wind and waves. Similarly, the connection between the movable plate set in the cage hub and the netting can also be buffered to reduce the probability of damage to the netting near the cage hub when it is impacted by wind and waves.

[0007] Preferably, the buffer is a rubber buffer plate whose two ends abut against the inner wall of the movable plate and the side of the mounting groove closest to the mesh, respectively.

[0008] Using the above solution, the rubber buffer plate set on the inner wall of the mounting groove near the mesh can be deformed by the pressure of the moving plate when the moving plate moves. When the rubber buffer plate is deformed by the pressure of the moving plate, it will also exert a reaction force on the moving plate, reduce the moving speed of the moving plate, reduce the impact of wind and waves on the connection between the moving plate and the mesh, and thus reduce the probability of the mesh being damaged by wind and waves.

[0009] Preferably, the inner wall of the mounting groove away from the mesh is provided with a reset component to facilitate the reset of the movable plate after movement and to further buffer the movement of the movable plate.

[0010] Preferably, the reset component includes a tension spring with both ends connected to the inner wall of the moving plate and the mounting groove on the side away from the mesh, respectively.

[0011] With the above solution, the tension spring installed between the movable plate and the mounting groove can pull the movable plate back to its initial position after it moves due to the impact of wind and waves on the mesh, providing space for the subsequent movable plate to move. At the same time, the tension spring can also reduce the speed at which the movable plate moves due to the impact of wind and waves on the mesh, thereby reducing the probability of damage to the connection between the movable plate and the mesh under the impact of wind and waves.

[0012] Preferably, the upper hub is provided with an opening and closing component that facilitates the installation of the movable plate into the mounting slot when open and restricts the movable plate from detaching from the mounting slot when closed.

[0013] Preferably, the opening and closing component includes a side wall on the cage hub and a mounting hole at the bottom that communicates with the mounting grooves on the cage hub and the connecting plate, respectively. An opening and closing plate for opening and closing the mounting hole is threaded into the mounting hole.

[0014] Using the above scheme, the opening and closing plate set in the mounting hole can control the opening or closing of the mounting hole. When the opening and closing plate controls the mounting hole to open, the operator can install the movable plate into the mounting slot; when the opening and closing plate controls the mounting hole to close, the opening and closing plate will prevent the movable plate from being removed from the mounting slot.

[0015] Preferably, when the opening and closing plate is installed in the designated position within the mounting hole, its bottom surface abuts against the top surface of the moving plate.

[0016] By adopting the above solution, the bottom surface of the opening and closing plate abuts against the top surface of the moving plate when it is installed in the designated position in the mounting hole, making the movement of the moving plate in the mounting groove more stable.

[0017] This utility model, by adopting the above technical solutions, has significant technical effects: the movable plate set in the mounting groove can move within the mounting groove when the netting is impacted by wind and waves; the buffer set on the side wall of the mounting groove near the netting can reduce the moving speed of the movable plate, thereby reducing the probability of damage to the connection between the movable plate in the connecting plate and the netting under the impact of wind and waves; similarly, the connection between the movable plate set in the cage hub and the netting can also reduce the probability of damage to the netting near the cage hub when impacted by wind and waves through the buffer component, thus improving the service life of the netting. Attached Figure Description

[0018] Figure 1 This is an isometric drawing of a wave-resistant cage used in this embodiment; Figure 2 This is a cross-sectional view of a wave-resistant cage in this embodiment; Figure 3 yes Figure 2 Enlarged view of point A in the middle; Figure 4 yes Figure 2 Enlarged view of point B in the middle; Figure 5 This is a cross-sectional view of the mesh and cage hub in this embodiment; Figure 6 yes Figure 5 Enlarged view of point C in the middle; Figure 7 This is an isometric view of the mesh in this embodiment; Figure 8 This is an isometric view of the connecting column in this embodiment.

[0019] The parts referred to by the numbers in the above attached diagrams are as follows: 1. Cage hub; 2. Mesh; 3. Mounting groove; 4. Moving plate; 5. Rubber buffer plate; 6. Through groove; 7. Tension spring; 8. Mounting hole; 9. Opening and closing plate; 10. Float; 11. Connecting plate. Detailed Implementation

[0020] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments.

[0021] Example A wind and wave resistant cage, reference Figure 1 , Figures 5-8The cage includes two coaxially arranged cage hubs 1, connecting plates 11 circumferentially arranged between the two cage hubs 1 and connected to the two cage hubs 1 at both ends, and a net 2 arranged between two adjacent connecting plates 11. Buffer components for reducing the impact on the net 2 are respectively arranged between the net 2 and the connecting plates 11 and between the net 2 and the cage hubs 1. The buffer components include mounting grooves 3 vertically arranged on the connecting plates 11 and horizontally arranged on the cage hubs 1. Movable plates 4 are respectively arranged at the end of the net 2 near the connecting plates 11 and the end of the net 2 near the cage hubs 1, which can move within the mounting grooves 3 as the net 2 is impacted by wind and waves. Buffer members are provided on the inner wall of the mounting grooves 3 near the net 2 to buffer the movement of the movable plates 4 when they move within the mounting grooves 3 due to the impact of the net 2. A through groove 6 is provided in the middle of the buffer member for the net 2 to pass through. The cage hubs 1 located above are provided with floats 10 for driving the entire net cage to float on the water surface.

[0022] The buffer is a rubber buffer plate 5 whose two ends abut against the inner wall of the moving plate 4 and the mounting groove 3 on the side near the mesh 2, respectively.

[0023] refer to Figures 2-6 The inner wall of the mounting groove 3 away from the mesh 2 is provided with a reset component to facilitate the reset of the movable plate 4 after movement and to further buffer the movement of the movable plate 4. The reset component includes a tension spring 7 with both ends connected to the movable plate 4 and the inner wall of the mounting groove 3 away from the mesh 2 respectively.

[0024] refer to Figures 1-3 On one side of the two cage hubs 1 facing away from each other, there is an opening and closing component that facilitates the installation of the movable plate 4 into the mounting groove 3 when it is open and restricts the movable plate 4 from being removed from the mounting groove 3 when it is closed. The opening and closing component includes a side wall opened on the cage hub 1 and a mounting hole 8 at the bottom that communicates with the mounting groove 3 on the cage hub 1 and the connecting plate 11 respectively. An opening and closing plate 9 for opening and closing the mounting hole 8 is threaded in the mounting hole 8. When the opening and closing plate 9 is installed in the designated position in the mounting hole 8, its bottom surface abuts against the top surface of the movable plate 4.

[0025] Specific buffering process: When waves impact the mesh 2, the mesh 2 transmits the impact to the connected movable plate 4. The movable plate 4 then moves within the mounting groove 3. As it moves, it presses against the rubber buffer plate 5 located on the inner wall of the mounting groove 3 near the mesh 2, causing the rubber buffer plate 5 to deform. This deformation also exerts a reaction force on the movable plate 4, reducing its speed and thus minimizing the impact of waves on the connection between the movable plate 4 and the mesh 2. The probability of the mesh 2 being damaged by the impact of wind and waves is reduced, thus increasing the service life of the mesh 2. At the same time, when the moving plate 4 moves, the tension spring 7 set between the moving plate 4 and the side of the mounting groove 3 away from the mesh 2 will also pull the moving plate 4, thereby further reducing the moving speed of the moving plate 4. This further reduces the impact of wind and waves on the connection between the moving plate 4 and the mesh 2, further improving the usability of the mesh 2. In addition, the tension spring 7 can also pull the moving plate 4 back to its original position after it moves, thereby increasing the movement space for the moving plate 4 to move in the future.

[0026] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.

Claims

1. A wind and wave resistant gabion, comprising two coaxially arranged cage hubs (1), connecting plates (11) circumferentially arranged between the two cage hubs (1) and connected to the two cage hubs (1) at both ends respectively, and a mesh (2) disposed between two adjacent connecting plates (11), characterized in that: Buffer components for reducing the impact on the mesh (2) are respectively provided between the mesh (2) and the connecting plate (11) and between the mesh (2) and the cage hub (1). The buffer components include a mounting groove (3) that is vertically arranged on the connecting plate (11) and horizontally arranged on the cage hub (1). A movable plate (4) that can move in the mounting groove (3) as the wind and waves impact the mesh (2) is subjected to the impact of the mesh (2) is respectively provided at the end of the mesh (2) near the connecting plate (11) and the end of the mesh (2) near the cage hub (1). A buffer member is provided on the inner wall of the mounting groove (3) near the mesh (2) to provide buffer for the movement of the movable plate (4) when the movable plate (4) moves in the mounting groove (3) due to the impact of the mesh (2). A through groove (6) for the mesh (2) to pass through is provided in the middle of the buffer member.

2. The wave-resistant cage according to claim 1, characterized in that: The buffer is a rubber buffer plate (5) whose two ends abut against the inner wall of the moving plate (4) and the mounting groove (3) on the side close to the mesh (2).

3. The wave-resistant gabion cage according to claim 1, characterized in that: On the inner wall of the mounting slot (3) away from the mesh (2), there is a reset component that facilitates the reset of the movable plate (4) after it is moved and further buffers the movement of the movable plate (4).

4. The wave-resistant gabion cage according to claim 3, characterized in that: The reset component includes a tension spring (7) disposed between the inner wall of the movable plate (4) and the mounting groove (3) on the side away from the mesh (2), with both ends connected to the two respectively.

5. The wave-resistant gabion cage according to claim 1, characterized in that: On the opposite side of the two cages (1), there is an opening and closing component that facilitates the installation of the moving plate (4) into the mounting groove (3) when it is open and restricts the moving plate (4) from being removed from the mounting groove (3) when it is closed.

6. The wave-resistant gabion cage according to claim 5, characterized in that: The opening and closing component includes a side wall and a bottom mounting hole (8) that are respectively connected to the mounting groove (3) on the cage hub (1) and the connecting plate (11). The mounting hole (8) is threaded with an opening and closing plate (9) for opening and closing the mounting hole (8).

7. A wave-resistant gabion cage according to claim 6, characterized in that: When the opening and closing plate (9) is installed in the designated position in the mounting hole (8), its bottom surface abuts against the top surface of the moving plate (4).

Citation Information

Patent Citations

  • Wind wave -resisting net casing

    CN206674806U