Anti-overturning stabilizing mechanism for marine lifesaving equipment
By introducing components such as buoyancy chambers, rotating shafts, tempered glass shells, and solar panels into marine life-saving equipment, the problems of stability and insufficient energy supply in traditional equipment have been solved, enabling the equipment to achieve autonomous survival and rescue capabilities, and improving the safety and reliability of marine life-saving.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG ZUOLI NEW MATERIALS TECHNOLOGY CO LTD
- Filing Date
- 2025-09-17
- Publication Date
- 2026-07-24
AI Technical Summary
Traditional marine rescue equipment is inadequate in terms of stability, energy supply, and protective capabilities, making it difficult to ensure the safety of personnel in complex marine environments.
A capsizing stabilization mechanism for marine lifesaving equipment was designed. It uses components such as a buoyancy chamber, a rotating shaft, a tempered glass shell, a solar panel, a hydraulic system, a motor, and a propeller to achieve multi-angle rotation of the survival chamber and autonomous survival functions. The solar panel provides power support, and the hydraulic system and motor drive the propeller to call for help.
The device's stability was improved, the survival chamber's protective capabilities were enhanced, and the self-powered system extended the lifespan of the survival equipment, ensuring the safety and survival ability of personnel.
Smart Images

Figure CN224546254U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of marine lifesaving technology, and in particular to an anti-overturning stabilization mechanism for marine lifesaving equipment. Background Technology
[0002] During maritime navigation or operations, unexpected situations such as severe weather and ship malfunctions frequently occur, making maritime lifesaving equipment crucial for ensuring the safety of personnel. However, traditional maritime lifesaving devices have many limitations in practical applications and cannot fully meet the survival needs in complex marine environments.
[0003] In terms of stability, most traditional survival devices have fixed structures and lack flexible adjustment mechanisms. In situations with large waves, these devices are prone to violent swaying and even capsizing. Capsizing not only exposes occupants to the risk of drowning but can also cause the life-saving equipment to malfunction, seriously threatening lives. This lack of stability due to structural design flaws has long been a significant factor limiting the reliability of maritime life-saving equipment.
[0004] In terms of energy supply, traditional survival equipment often relies on built-in batteries or external power sources for its survival components, resulting in limited battery life. When the batteries run out, critical survival components such as signal lights and communication devices cease to function properly, significantly reducing the likelihood of self-rescue or being rescued. During the long wait for rescue, energy shortages often put survivors in even more dangerous situations.
[0005] Furthermore, the protective capabilities of traditional survival capsules need improvement. Some survival capsules use ordinary glass or plastic as observation and protective components, which are easily damaged when subjected to impacts, wave impacts, or other external forces, failing to provide effective safety protection for the occupants and further reducing their ability to survive at sea.
[0006] Given the shortcomings of traditional marine lifesaving equipment in terms of stability, energy supply, and protection capabilities, it is particularly necessary to develop a capsizing stabilization mechanism for marine lifesaving equipment that can adapt to complex marine environments and improve survival safety and reliability. Utility Model Content
[0007] The purpose of this utility model is to at least solve one of the technical problems existing in the prior art, and to provide a capsizing stabilization mechanism for marine life-saving equipment, which can improve the stability of the device, enable the transmission of distress signals, and facilitate autonomous survival.
[0008] This utility model also provides a capsizing stabilization mechanism for a marine lifesaving device, comprising a buoyancy chamber, a cylindrical hole at the center of the buoyancy chamber, a first rotating shaft fixedly connected to the inner wall of the cylindrical hole, a first ring movably connected to the first rotating shaft, second rotating shafts movably connected to both sides of the first ring, a second ring movably connected to the second rotating shaft, a survival chamber fixedly connected to the inner ring of the second ring, the survival chamber being mainly protected by a tempered glass shell, and a solar panel fixedly connected to the buoyancy chamber.
[0009] According to the present invention, a capsizing stabilizing mechanism for marine lifesaving equipment is provided, wherein a first gasket is fixedly connected to the first ring, and a hydraulic device is fixedly connected to the first gasket.
[0010] According to the present invention, a capsizing stabilizing mechanism for marine lifesaving equipment includes a spherical swing block fixedly connected to the hydraulic unit, and a radar dish movably connected to the spherical swing block.
[0011] According to the present invention, a capsizing stabilizing mechanism for marine lifesaving equipment is provided, wherein a second pad is fixedly connected to the first ring, and a motor is fixedly connected to the second pad.
[0012] According to the present invention, a capsizing stabilizing mechanism for marine lifesaving equipment is provided, wherein a third rotating shaft is movably connected to the output end of the motor.
[0013] According to the present invention, a marine life-saving equipment anti-overturning stabilization mechanism is provided, wherein a propeller is fixedly connected to the third rotating shaft.
[0014] Beneficial effects: 1. By adding multiple rotating shafts, the survival chamber can rotate at multiple angles. Compared with traditional survival devices, this greatly reduces the impact of wave fluctuations on the device, improves the stability of the device, and has the ability to prevent overturning, thus greatly ensuring the safety of personnel.
[0015] 2. By adding solar panels to provide power to other survival components, the device can perform its own survival functions to achieve self-rescue or be rescued. The tempered glass protection enhances the protection of the survival chamber and greatly improves its survivability. Attached Figure Description
[0016] The present invention will be further described below with reference to the accompanying drawings and embodiments; Figure 1 This is a perspective view of an anti-capsulation stabilization mechanism for a marine lifesaving device according to the present invention; Figure 2 This is a front view of an anti-capsulation stabilization mechanism for a marine lifesaving device according to this utility model; Figure 3This is a top view of an anti-capsulation stabilization mechanism for a marine lifesaving device according to this utility model; Figure 4 In this utility model Figure 2 Enlarged cross-sectional view at point AA; Figure 5 In this utility model Figure 2 Enlarged view of point A in the middle.
[0017] Legend: 1. Buoyancy chamber; 2. Cylindrical hole; 3. First rotating shaft; 4. First ring; 5. Second rotating shaft; 6. Second ring; 7. Survival chamber; 8. Motor; 9. Propeller; 10. Solar panel; 11. Hydraulic unit; 12. Spherical oscillating block; 13. Radar dish; 14. Tempered glass shell; 15. Third rotating shaft; 16. First gasket; 17. Second gasket. Detailed Implementation
[0018] This section will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and the overall technical solution of the present utility model, but they should not be construed as limiting the scope of protection of the present utility model.
[0019] Reference Figure 1-5 This utility model discloses a capsizing stabilization mechanism for marine lifesaving equipment, which includes a buoyancy chamber 1. A cylindrical hole 2 is provided at the center of the buoyancy chamber 1. A first rotating shaft 3 is fixedly connected to the inner wall of the cylindrical hole 2. A first ring 4 is movably connected to the first rotating shaft 3. Second rotating shafts 5 are movably connected to both sides of the first ring 4. A second ring 6 is movably connected to the second rotating shaft 5. A survival chamber 7 is fixedly connected to the inner ring of the second ring 6. The survival chamber 7 is mainly protected by a tempered glass shell 14. A solar panel 10 is fixedly connected to the buoyancy chamber 1.
[0020] Specifically, the buoyancy chamber 1 provides sufficient buoyancy for the device; the cylindrical hole 2 provides assembly space for the installation of other components; the first rotating shaft 3 is the main rotating component that can rotate up and down; the first ring 4 is the main supporting component that provides protection; the second rotating shaft 5 is the main rotating component that can rotate left and right; the second ring 6 is the main supporting component that provides protection; the survival chamber 7 is the main survival space for survivors and can work with the first rotating shaft 3 and the second rotating shaft 5 to keep the people inside the survival chamber 7 on a horizontal plane under the action of gravity; the tempered glass shell 14 protects the survival chamber 7; and the solar panel 10 provides power to the other components.
[0021] The first ring 4 is fixedly connected to the first gasket 16, and the first gasket 16 is fixedly connected to the hydraulic device 11.
[0022] Specifically, the first gasket 16 is the main connecting component, and the hydraulic device 11 can be adjusted up and down by telescoping.
[0023] A spherical swing block 12 is fixedly connected to the hydraulic unit 11, and a radar dish 13 is movably connected to the spherical swing block 12.
[0024] Specifically, the spherical swing block 12 can enable the radar dish 13 to swing at multiple angles in order to receive or send more signals, and the radar dish 13 is a signal receiving component.
[0025] A second washer 17 is fixedly connected to the first ring 4, and a motor 8 is fixedly connected to the second washer 17.
[0026] Specifically, the second gasket 17 is the main connecting component, and the motor 8 is the main power component.
[0027] The output end of motor 8 is movably connected to a third rotating shaft 15.
[0028] Specifically, the third rotating shaft 15 is rotated by the motor 8.
[0029] A propeller 9 is fixedly connected to the third rotating shaft 15.
[0030] Specifically, the propeller 9 can drive the device to move via the motor 8 and the third rotating shaft 15.
[0031] Working principle: Prepare necessary supplies in advance and put them into the survival chamber 7. Push the device into the seawater, and personnel enter the survival chamber 7. Close the entrance and exit tightly. With the help of the first rotating shaft 3 and the second rotating shaft 5, the people in the survival chamber 7 can stay on a level surface and will not feel bumpy as the seawater rises and falls. Under the solar radiation, the solar panel 10 begins to convert radiant energy into electrical energy to power the radar device and the power device. Start the hydraulic device 11 to rotate the spherical swing block 12 to adjust the angle of the radar dish 13 until a signal is found. Send a distress signal and determine the direction. Start the motor 8 to drive the propeller 9 on the third rotating shaft 15 to rotate and move the device to complete the distress call.
[0032] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.
Claims
1. A capsizing stabilization mechanism for marine lifesaving equipment, comprising a buoyancy chamber (1), characterized in that: The buoyancy chamber (1) has a cylindrical hole (2) at its center. A first rotating shaft (3) is fixedly connected to the inner wall of the cylindrical hole (2). A first ring (4) is movably connected to the first rotating shaft (3). A second rotating shaft (5) is movably connected to both sides of the first ring (4). A second ring (6) is movably connected to the second rotating shaft (5). A survival chamber (7) is fixedly connected to the inner ring of the second ring (6). The survival chamber (7) is mainly protected by a tempered glass shell (14). A solar panel (10) is fixedly connected to the buoyancy chamber (1).
2. The anti-capsulation stabilization mechanism for marine lifesaving equipment according to claim 1, characterized in that, The first ring (4) is fixedly connected to the first gasket (16), and the first gasket (16) is fixedly connected to the hydraulic device (11).
3. The anti-capsulation stabilization mechanism for marine lifesaving equipment according to claim 2, characterized in that, A spherical swing block (12) is fixedly connected to the hydraulic device (11), and a radar dish (13) is movably connected to the spherical swing block (12).
4. The anti-capsulation stabilization mechanism for marine lifesaving equipment according to claim 1, characterized in that, A second gasket (17) is fixedly connected to the first ring (4), and a motor (8) is fixedly connected to the second gasket (17).
5. The anti-capsulation stabilization mechanism for marine lifesaving equipment according to claim 4, characterized in that, The output end of the motor (8) is movably connected to a third rotating shaft (15).
6. The anti-capsulation stabilization mechanism for marine lifesaving equipment according to claim 5, characterized in that, A propeller (9) is fixedly connected to the third rotating shaft (15).