A weather cloud platform wind and wave impact stabilizing device

By designing an anti-impact mechanism on the meteorological cloud map platform, using sliding blocks and springs to reduce the impact of wind and waves, and combining it with a ring array of protective blocks, the problem of damage to the cloud map platform by sea winds and waves has been solved, achieving equipment stability and ease of maintenance.

CN224497248UActive Publication Date: 2026-07-14CHINA SATELLITE MARITIME MEASUREMENT & CONTROL DEPT

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHINA SATELLITE MARITIME MEASUREMENT & CONTROL DEPT
Filing Date
2025-07-02
Publication Date
2026-07-14

AI Technical Summary

Technical Problem

Changes in marine weather caused by wind and waves damaged the meteorological cloud image platform equipment, affecting its use.

Method used

An anti-impact mechanism was designed, including a platform body, support rods, meteorological monitoring components, photovoltaic power supply components, sliding blocks, limit blocks, and counterweights. Through the cooperation of sliding blocks and springs, the impact force of wind and waves is reduced, the stability of the equipment is improved, and the platform is protected in all directions by a ring array of protective blocks.

Benefits of technology

It effectively reduces the damage of wind and waves to the cloud platform, improves the stability of the equipment, makes it easy to replace the protective blocks, and is simple and quick to operate, avoiding the problem of equipment damage caused by wind, waves and debris.

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Abstract

The application discloses a weather cloud picture platform wind and wave impact prevention stabilizing device, and belongs to the technical field of weather cloud picture platforms. The weather cloud picture platform wind and wave impact prevention stabilizing device comprises an impact prevention mechanism. When a protective block is impacted by wind and waves, the protective block pushes a sliding block to move, the sliding block drives two limiting blocks arranged on the two sides to move in a moving groove, and the sliding block compresses springs arranged on the side, so that the impact force borne by the protective block can be reduced. The protective block is arranged in an annular array outside a platform main body and is provided with a counterweight at the bottom, so that the stability of the platform main body can be improved. The mounting block is inserted into the mounting groove, a fixing rod is subjected to the rebound force of a spring, the fixing rod is inserted into fixing holes arranged on the two sides of the sliding block, so that the mounting block and the sliding block can be fixed, the protective block can be conveniently mounted and dismounted, and the operation is simple, fast and convenient.
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Description

Technical Field

[0001] This application relates to the field of meteorological cloud map platform technology, specifically a meteorological cloud map platform anti-wind and wave impact stabilization device. Background Technology

[0002] A meteorological cloud image platform is a system used to display and analyze meteorological cloud images. It is of great significance for weather forecasting, disaster early warning, and ocean shipping. Meteorological cloud image platforms are typically built on advanced technologies such as high-resolution remote sensing satellite technology, cloud computing technology, and artificial intelligence technology. These technologies enable the platform to acquire, process, and analyze large amounts of meteorological data in real time, thereby generating high-definition and accurate meteorological cloud images.

[0003] Weather changes at sea have a significant impact on ship operations. Maritime weather observation is accomplished through a maritime cloud chart receiving system. However, the outer deck equipment of the maritime cloud chart is subject to the impact of wind and waves, which can damage the cloud chart platform and make it inconvenient to use.

[0004] Therefore, this application provides a weather cloud image platform anti-wind and wave impact stabilization device to solve the above problems. Utility Model Content

[0005] This application provides a weather cloud image platform anti-wind and wave impact stabilization device, which aims to solve the problem mentioned in the background art that existing marine weather changes have a great impact on ship operations, marine weather observation is completed through the established cloud image receiving system, and the cloud image outer deck equipment at sea is subjected to wind and waves, resulting in damage to the cloud image platform and inconvenience in use.

[0006] To achieve the above objectives, this application provides the following technical solution: a weather cloud image platform anti-wind and wave impact stabilization device, the weather cloud image platform anti-wind and wave impact stabilization device including an anti-impact mechanism;

[0007] Preferably, existing maritime weather changes have a significant impact on ship operations. Maritime weather observation is accomplished through an established cloud image receiving system. However, the outer deck equipment of the maritime cloud image system is susceptible to wind and wave impacts, leading to damage to the cloud image platform and inconvenience in use. The proposed shock-resistant mechanism includes a platform body, with a support rod fixedly connected to its top. A meteorological monitoring component is mounted on the top of the support rod, and multiple sets of photovoltaic power supply components are fixedly connected around the top of the meteorological monitoring component. Multiple sets of movable slots are formed inside the platform body, and sliding blocks are installed inside each movable slot. An installation slot is provided inside one end of the platform body, located outside the moving slot. An installation block is installed inside the installation slot, and a protective block is fixedly connected to one side of the installation block. A counterweight is located at the bottom of the protective block. When the protective block is impacted by wind and waves, it pushes a sliding block to move. The sliding block then moves the limiting blocks on both sides inside the moving slot. The sliding block compresses a spring on its side, thereby reducing the impact force on the protective block. The protective blocks are arranged in a circular array outside the platform body, and the counterweight at the bottom of the protective blocks enhances the stability of the platform body. The operation is simple, quick, and convenient.

[0008] Preferably, in order to solve the problem of the stability of the sliding block movement, the sliding block is fixedly connected to both sides of one end inside the moving groove. The limiting blocks are slidably connected to the moving groove, and the sliding block drives the limiting blocks on both sides to slide inside the moving groove, thereby improving the stability of the sliding block movement.

[0009] Preferably, in order to solve the problem of convenient operation of the sliding block, a spring is fixedly connected between one end of the sliding block and the inside of the moving groove. During the movement of the sliding block, the spring on the side is compressed, and the sliding block can be easily restored to its original shape by the spring, which makes it convenient to use.

[0010] Preferably, to address the issue that debris in the waves may damage the protective block during wave resistance, making replacement inconvenient, the mounting block is inserted into the mounting groove. A fixing rod is installed inside one end of the mounting block, and fixing holes are provided on both sides of the mounting groove. The fixing rod is inserted into these holes. By pressing the fixing rod, it pushes a sliding plate on the side to move. The sliding plate slides within the sliding groove inside the mounting block, compressing the second spring on the side. The two sets of fixing rods then enter the mounting block, inserting it into the mounting groove. The fixing rods, subjected to the rebound force of the second spring, engage with the fixing holes on both sides of the sliding block, facilitating the fixing of the mounting block and the sliding block. This makes installation and disassembly of the protective block simple, quick, and convenient.

[0011] Preferably, to address the issue of convenient operation of the fixing rods, two sets of fixing rods are symmetrically arranged inside the mounting block. Each fixing rod has a sliding plate fixedly connected to one end inside the mounting block, and a second spring is fixedly connected between the two sets of sliding plates. The fixing rod pushes the two sets of sliding plates to move, and the sliding plates compress the second spring on the side. Through the rebound force of the second spring, the fixing rod can easily return to its original shape, facilitating operation.

[0012] Preferably, in order to solve the problem of the stability of the fixed rod movement, the mounting block has sliding grooves on both sides inside, the two ends of the sliding plate are set inside the sliding grooves, and the sliding plate is slidably connected to the sliding grooves.

[0013] Preferably, in order to solve the problem of convenient use of the platform body, the moving slots are arranged in a ring array inside the platform body, and the protective blocks are arranged in a ring array outside the platform body. The protective blocks arranged in a ring array outside the platform body can provide all-round protection for the platform body, avoid the platform body from being impacted by wind and waves, and make it convenient to use.

[0014] This shock-resistant mechanism works by having the protective block move when it is impacted by wind and waves. The sliding block then moves the limiting blocks on both sides inside the moving groove. The sliding block compresses the spring on the side, thereby reducing the impact force on the protective block. The protective blocks are arranged in a ring array on the outside of the platform body, and the counterweight at the bottom of the protective blocks improves the stability of the platform body. The mechanism is simple, quick, and easy to use.

[0015] This impact-resistant mechanism, by pressing the fixing rod, causes the fixing rod to push the sliding plate on the side to move. The sliding plate slides inside the sliding groove opened inside the mounting block, thereby compressing the second spring on the side. The two sets of fixing rods enter the interior of the mounting block, inserting the mounting block into the interior of the mounting groove. The fixing rod is subjected to the rebound force of the second spring, causing the fixing rod to be inserted into the fixing holes opened on both sides of the sliding block. This facilitates the fixing of the mounting block and the sliding block, making it easy to install and remove the protective block. The operation is simple, quick, and convenient. Attached Figure Description

[0016] Figure 1 A three-dimensional structural schematic diagram of a weather cloud image platform anti-wind and wave impact stabilization device;

[0017] Figure 2 A schematic diagram of the three-dimensional dynamic structure of a weather cloud image platform anti-wind and wave impact stabilization device;

[0018] Figure 3 A top view schematic diagram of a weather cloud image platform anti-wind and wave impact stabilization device;

[0019] Figure 4 This utility model Figure 3 Schematic diagram of the structure at point A in the middle.

[0020] In the picture:

[0021] 1. Impact-resistant mechanism; 11. Platform body; 12. Support rod; 13. Meteorological monitoring component; 14. Photovoltaic power supply component; 15. Moving groove; 16. Sliding block; 17. Mounting groove; 18. Mounting block; 19. Protective block; 20. Counterweight block; 21. Limiting block; 22. Spring 1; 23. Fixing rod; 24. Fixing hole; 25. Sliding plate; 26. Sliding groove; 27. Spring 2. Detailed Implementation

[0022] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0023] Example 1

[0024] This embodiment provides a weather cloud image platform anti-wind and wave impact stabilization device, such as... Figure 1-4 As shown, the weather cloud map platform is protected against wind and wave impact stabilization device, which includes an impact-resistant mechanism 1.

[0025] When in use, the anti-impact mechanism 1 can prevent the impact of wind and waves, reduce the impact force of wind and waves, improve the stability of the platform body 11 during use, and make it easy to replace the protective block 19, avoiding the phenomenon that the protective block 19 is damaged by wind, waves and debris and is inconvenient to replace. The operation is simple and quick and easy to use.

[0026] Specifically, the impact protection mechanism 1 includes a platform body 11, a support rod 12 fixedly connected to the top of the impact protection mechanism 1, a meteorological monitoring component 13 set on the top of the support rod 12, multiple sets of photovoltaic power supply components 14 fixedly connected around the top of the meteorological monitoring component 13, multiple sets of moving slots 15 opened inside the platform body 11, a sliding block 16 set inside the moving slot 15, an installation slot 17 opened inside one end of the sliding block 16 located outside the moving slot 15, an installation block 18 set inside the installation slot 17, a protective block 19 fixedly connected to one side of the installation block 18, and a counterweight block 20 set at the bottom of the protective block 19;

[0027] When in use, the protective block 19 is impacted by wind and waves, causing it to push the sliding block 16 to move. The sliding block 16 drives the limiting blocks 21 on both sides to move inside the moving groove 15. The sliding block 16 compresses the spring 22 on the side, thereby reducing the impact force on the protective block 19. The protective blocks 19 are arranged in a ring array on the outside of the platform body 11. The counterweight 20 at the bottom of the protective blocks 19 can improve the stability of the platform body 11. The operation is simple and quick, and it is convenient to use.

[0028] Furthermore, the sliding block 16 is fixedly connected to two limit blocks 21 on both sides of one end inside the moving groove 15. The limit blocks 21 are slidably connected to the moving groove 15. The sliding block 16 drives the limit blocks 21 on both sides to slide inside the moving groove 15, thereby improving the stability of the movement of the sliding block 16.

[0029] Furthermore, a spring 22 is fixedly connected between one end of the sliding block 16 and the inside of the moving groove 15. During the movement of the sliding block 16, the spring 22 on the side is compressed. The spring 22 can be used to easily restore the sliding block 16 to its original shape, making it convenient to use.

[0030] The movable slots 15 are arranged in a ring array inside the platform body 11, and the protective blocks 19 are arranged in a ring array outside the platform body 11. The protective blocks 19 arranged in a ring array outside the platform body 11 can provide all-round protection for the platform body 11, preventing the platform body 11 from being impacted by wind and waves, and are easy to use.

[0031] Example 2

[0032] Unlike Embodiment 1, the protective block 19 may be damaged by debris in the wind and waves during the process of resisting wind and waves, and the protective block 19 is inconvenient to replace. Therefore, the mounting block 18 is inserted into the mounting groove 17. A fixing rod 23 is provided inside one end of the mounting block 18, and fixing holes 24 are provided on both sides of the mounting groove 17. The fixing rod 23 is inserted into the fixing holes 24.

[0033] In use, pressing the fixing rod 23 causes it to push the sliding plate 25 on the side to move. The sliding plate 25 slides inside the sliding groove 26 inside the mounting block 18, thereby compressing the second spring 27 on the side. The two sets of fixing rods 23 enter the interior of the mounting block 18, inserting the mounting block 18 into the interior of the mounting groove 17. The fixing rod 23 is subjected to the rebound force of the second spring 27, causing it to be inserted into the fixing holes 24 on both sides of the sliding block 16. This facilitates the fixing of the mounting block 18 and the sliding block 16, making it easy to install and remove the protective block 19. The operation is simple, quick, and convenient.

[0034] Specifically, two sets of fixing rods 23 are symmetrically arranged inside the mounting block 18. Each end of the fixing rod 23 inside the mounting block 18 is fixedly connected to a sliding plate 25. A second spring 27 is fixedly connected between the two sets of sliding plates 25. The fixing rod 23 pushes the two sets of sliding plates 25 to move. The sliding plate 25 compresses the second spring 27 on the side. Through the rebound force of the second spring 27, the fixing rod 23 can easily return to its original shape, which is convenient for operation.

[0035] Furthermore, sliding grooves 26 are provided on both sides of the interior of the mounting block 18, and the two ends of the sliding plate 25 are located inside the sliding grooves 26. The sliding plate 25 is slidably connected to the sliding grooves 26. The sliding plate 25 slides inside the sliding grooves 26, which can improve the stability of the movement of the fixing rod 23.

[0036] It should be noted that the meteorological monitoring component 13 and the photovoltaic power supply component 14 are existing devices, and their working principle, size and model are not related to the function of this application, so they will not be described in detail. The control method of this utility model is controlled by a controller. The control circuit of the controller can be implemented by a person skilled in the art through simple programming. The power supply is also common knowledge in the art. Furthermore, this utility model is mainly used to protect mechanical devices, so the control method and circuit connection will not be explained in detail.

[0037] The above are merely preferred embodiments of this application, but the scope of protection of this application 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 application, based on the technical solution and concept of this application, should be included within the scope of protection of this application.

Claims

1. A weather cloud image platform anti-wind and wave impact stabilization device, characterized in that, The weather cloud map platform anti-wind and wave impact stabilization device includes an anti-impact mechanism (1); The shock-proof mechanism (1) includes a platform body (11), a support rod (12) is fixedly connected to the top of the shock-proof mechanism (1), a meteorological monitoring component (13) is provided on the top of the support rod (12), a number of photovoltaic power supply components (14) are fixedly connected around the top of the meteorological monitoring component (13), a number of moving slots (15) are opened inside the platform body (11), a sliding block (16) is provided inside the moving slot (15), an installation slot (17) is opened inside one end of the sliding block (16) outside the moving slot (15), an installation block (18) is provided inside the installation slot (17), a protective block (19) is fixedly connected to one side of the installation block (18), and a counterweight block (20) is provided at the bottom of the protective block (19).

2. The weather cloud map platform anti-wind and wave impact stabilization device according to claim 1, characterized in that: The sliding block (16) is fixedly connected to two limit blocks (21) on both sides of one end inside the moving groove (15), and the limit blocks (21) are slidably connected to the moving groove (15).

3. The weather cloud map platform anti-wind and wave impact stabilization device according to claim 2, characterized in that: The sliding block (16) is located inside the moving groove (15), and a spring (22) is fixedly connected between one end of the sliding block (16) and the inside of the moving groove (15).

4. The weather cloud map platform anti-wind and wave impact stabilization device according to claim 1, characterized in that: The mounting block (18) is inserted into the mounting groove (17). A fixing rod (23) is provided inside one end of the mounting block (18). Fixing holes (24) are provided on both sides of the mounting groove (17). The fixing rod (23) is inserted into the fixing hole (24).

5. The weather cloud map platform anti-wind and wave impact stabilization device according to claim 4, characterized in that: Two sets of fixing holes (24) are symmetrically arranged inside the mounting block (18). A sliding plate (25) is fixedly connected to one end of each fixing hole (24) inside the mounting block (18). A spring (27) is fixedly connected between the two sets of sliding plates (25).

6. The weather cloud map platform anti-wind and wave impact stabilization device according to claim 5, characterized in that: The mounting block (18) has sliding grooves (26) on both sides inside. The two ends of the sliding plate (25) are located inside the sliding grooves (26), and the sliding plate (25) is slidably connected to the sliding grooves (26).

7. The weather cloud map platform anti-wind and wave impact stabilization device according to claim 1, characterized in that: The moving slots (15) are arranged in a ring array inside the platform body (11), and the protective blocks (19) are arranged in a ring array outside the platform body (11).