Water buoyancy device

By using a telescopic nested or telescopic superimposed frame in conjunction with an inflatable structure in the water buoyancy device, the problems of inconvenience in carrying and slow inflation of existing devices are solved, achieving the effects of rapid inflation and convenient carrying.

CN223533641UActive Publication Date: 2025-11-11WEIFANG WARRIOR SECURITY TECH CO LTD
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Patent Information

Application Number
CN202421713523.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-19
Publication Date
2025-11-11
Estimated Expiration
2034-07-19

AI Technical Summary

Technical Problem

Existing water buoyancy devices are inconvenient to carry, take up a large area, and have a slow inflation speed, requiring the use of inflation tools.

Method used

The system uses a frame with telescopic nesting or telescopic stacking functions in conjunction with the inflatable structure body. An air valve is installed, and by pulling the two ends of the frame or the inflatable structure body, a negative pressure is formed, allowing external gas to enter the inflatable structure body for rapid inflation. It can also automatically expand under the elastic force of the spiral structure.

Benefits of technology

It features rapid inflation, easy portability, and a compact size when folded up, making it suitable for rapid rescue in emergency situations.

✦ Generated by Eureka AI based on patent content.

Smart Images

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    Figure CN223533641U_ABST
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Abstract

The utility model discloses an overwater buoyancy device which comprises an inflation structure body which is of a strip-shaped structure. The framework is matched with the inflatable structure body, the framework is of a telescopic nested structure or a telescopic superposed structure, and the framework is used for supporting the inflatable structure body; wherein an air inlet and exhaust end is arranged on the inflatable structure body or the framework. The portable air inflation device has the advantages of being rapid in inflation, automatic in inflation, convenient to carry, small in size after being stored and capable of achieving water buoyancy.
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Description

Technical Field

[0001] This utility model relates to the field of lifesaving and water buoyancy equipment technology, and more specifically, to a water buoyancy device. Background Technology

[0002] Currently, the main buoyancy devices for single-person use include life rings and swimming rings. Life rings are used for emergency buoyancy rescue of people who have fallen into the water. Swimming rings are used by swimmers to practice and learn to swim.

[0003] In existing technologies, one type of lifebuoy is a specialized device made of plastic or foam injection molding. These are bulky, inconvenient to carry, and cannot provide timely rescue in emergencies such as drowning. Existing inflatable lifebuoys and swimming rings are mostly inflated using an air pump or manually. They need to be pre-inflated, which is inconvenient to carry. In an emergency, if they are not inflated, an air pump is not readily available, and manual inflation is inefficient, delaying the best rescue opportunity.

[0004] In summary, at least one of the following technical problems exists:

[0005] Life rings and swimming rings are inconvenient to carry and take up a lot of space;

[0006] It inflates slowly and requires an inflation tool.

[0007] It has a large volume when stored. Utility Model Content

[0008] The main objective of this invention is to provide a water buoyancy device to solve at least one of the following technical problems in the existing technology: life rings and swimming rings are inconvenient to carry, occupy a large area, have slow inflation speed, require inflation tools, and have a large volume after being stored.

[0009] To achieve the above objectives, according to one aspect of the present invention, a buoyancy device for water is provided, comprising:

[0010] An inflatable structure body, wherein the inflatable structure body is a strip-shaped airbag structure;

[0011] The skeleton, which cooperates with the inflatable structure body, is a telescopic nested structure or a telescopic superimposed structure, and is used to support the inflatable structure body.

[0012] The inflatable structure body or frame is equipped with air intake and exhaust ends.

[0013] Preferably, the skeleton includes several closed ring supports or partially closed ring supports, wherein adjacent closed ring supports or partially closed ring supports can be nested or superimposed on each other.

[0014] Preferably, the skeleton is a spiral structure, which can be stretched and nested or stretched and stacked.

[0015] Preferably, when the skeleton is a telescopic nested structure, the diameter of the skeleton first increases and then decreases from one end, or the diameter of the skeleton first decreases and then increases from one end.

[0016] Preferably, the skeleton is disposed on the inner surface, interlayer, or outer surface of the inflatable structure body.

[0017] Preferably, the air intake and exhaust ends are equipped with air valves.

[0018] Preferably, the air valve is a one-way valve.

[0019] Preferably, the support is in the form of a closed or partially closed circle, ellipse, rectangle, trapezoid, or triangle.

[0020] Preferably, the inflatable structure body and the frame are integrally formed or the inflatable structure body and the frame are spliced ​​together to form a sealed structure.

[0021] Preferably, when the two ends of the skeleton with telescopic nesting or telescopic superposition function are pulled and stretched, or when the two ends of the inflatable structure body are pulled and stretched, a negative pressure is formed inside the inflatable structure body, and external gas enters the inflatable structure body through the air inlet and exhaust ends, inflating the inflatable structure body or automatically expanding and inflating under the elastic force of the spiral structure.

[0022] The application of the technical solution of this utility model has the following technical effects:

[0023] By fitting or integrally molding a frame with telescopic nesting or stacking functions to the inflatable structure body, an air valve is installed on either the frame or the inflatable structure body. Pulling or extending either end of the frame or the inflatable structure body creates a negative pressure within the inflatable structure body, allowing external gas to enter through the air valve and inflate it. This achieves rapid inflation of the inflatable structure body, offering the advantages of portability and rapid inflation.

[0024] By setting the skeleton as a telescopic nested structure, a smaller volume can be achieved after storage, with several supports nested within the largest support.

[0025] By setting the frame as a telescopic nested spiral structure, not only is a small volume achieved after storage, but it also allows the contents to be taken out of the storage bag or the buckles at both ends to be pulled open. Under the elastic action of the spiral structure, it can automatically pop open and support the inflatable structure body, achieving rapid and automatic inflation.

[0026] Setting the frame to a conical symmetrical structure improves inflation and makes it easier to connect the two ends to form a ring structure after inflation. Attached Figure Description

[0027] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:

[0028] Figure 1 A schematic diagram of the structure of the water buoyancy device according to the present invention is shown;

[0029] Figure 2 It shows Figure 1 Front view of the buoyancy device on the water;

[0030] Figure 3 It shows Figure 1 Left view of the buoyancy device on the water;

[0031] Figure 4 It shows Figure 1 A top view of the buoyancy device on the water.

[0032] Figure 5 It shows Figure 1 A bottom view of the buoyancy device on the water.

[0033] Figure 6 It shows Figure 1 Right view of the buoyancy device on the water;

[0034] Figure 7 It shows Figure 1 A view of the telescopic nested skeleton structure of the water buoyancy device in the image;

[0035] Figure 8 It shows Figure 1 A view of the spiral structure skeleton of the water buoyancy device in the image;

[0036] Figure 9 It shows Figure 1 A structural view of the skeleton of the water buoyancy device in which the skeleton and the inflatable structure are integrally formed or spliced ​​together.

[0037] Figure 10 It shows Figure 1 A view of the partially closed skeleton structure of the buoyancy device in the water;

[0038] Figure 11 It shows Figure 1 A diagram showing the nested structure of the skeleton of the buoyancy device in the water.

[0039] Figure 12 It shows Figure 1 A C-shaped structural view of the skeleton of the water buoyancy device.

[0040] The above figures include the following reference numerals:

[0041] 1. Inflatable structure body; 2. Air valve; 3. Frame; 4. Tension end; 5. Closed ring support; 6. Partially closed ring support; 7. Spiral structure. Detailed Implementation

[0042] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0043] like Figures 1 to 12 As shown, this utility model embodiment provides a water buoyancy device, including: an inflatable structure body 1, the inflatable structure body 1 being a strip-shaped airbag structure; a frame 3, the frame 3 cooperating with the inflatable structure body 1, the frame 3 being a telescopic nested structure or a telescopic superimposed structure, the frame 3 being used to support the inflatable structure body 1; wherein, the inflatable structure body 1 or the frame 3 is provided with an air inlet and an air outlet.

[0044] The frame 3 includes several closed annular supports 5 or partially closed annular supports 6, wherein adjacent closed annular supports 5 or partially closed annular supports 6 can be nested or superimposed on each other. The frame 3 is a spiral structure 7, which can be telescopically nested or telescopically superimposed. When the frame 3 is a telescopically nested structure, the diameter of the frame 3 first increases and then decreases from one end, or the diameter of the frame 3 first decreases and then increases from one end. The frame 3 is disposed on the inner surface, interlayer, or outer surface of the inflatable structure body 1. An air valve 2 is provided at the air inlet and exhaust ends. The air valve 2 is a one-way valve. The supports are in the form of closed or partially closed circles, ellipses, rectangles, trapezoids, or triangles. The inflatable structure body 1 and the frame 3 are integrally formed or spliced ​​together to form a sealed structure. When the two ends of the skeleton 3 with telescopic nesting or telescopic superposition function are pulled, or when the two ends of the inflatable structure body 1 are pulled, a negative pressure is formed inside the inflatable structure body 1. External gas enters the inflatable structure body 1 through the air inlet and exhaust ends, inflating the inflatable structure body 1 or automatically extending and inflating it under the elastic force of the spiral structure. Example 1

[0045] In this embodiment, regarding the inflatable structure body 1: the inflatable structure body 1 is a strip-shaped airbag structure; the main function of the inflatable structure body 1 is to form a sealed space, which can be inflated and thus generate buoyancy in water. The inflatable structure body 1 is a strip-shaped structure, wherein the strip-shaped structure is mainly straight, C-shaped, S-shaped, etc., but is not limited to the above specific shapes. As long as it has a certain length-to-width ratio and can achieve a certain stretching distance, it is within the scope of protection of this patent.

[0046] In this embodiment, regarding the inflatable structure body 1: the strip structure of the inflatable structure body 1 is designed to facilitate the formation of a ring, which makes it easy to put on a person. In this embodiment, the shape of the inflatable structure body 1 matches the shape of the frame 3. The inflatable structure body 1 can be set as a single layer or two or more layers. The material of the inflatable structure body 1 is waterproof and airtight, such as plastic film, fabric with plastic coating, etc., which are the materials of life rings or swimming rings, but are not limited to the above materials.

[0047] In this embodiment, regarding the inflatable structure body 1: the inflatable structure body 1 is a flexible inflatable structure, which can be, for example, an airbag, a swimming ring, a life ring, etc. The inflatable structure body 1 has tension ends 4 at both ends.

[0048] In this embodiment, regarding the skeleton 3: the skeleton 3 cooperates with the inflatable structure body 1. The skeleton 3 is a telescopic nested structure or a telescopic superimposed structure. The skeleton 3 is used to support the inflatable structure body 1. The skeleton 3 is set on the inflatable structure body 1 and connected to the inflatable structure body 1. The skeleton 3 is a telescopic nested structure or a telescopic superimposed structure. The skeleton 3, which can realize the telescopic nesting or superimposed function, includes several supports. The several supports are arranged at intervals. When it is a telescopic nested structure, the diameter of the supports gradually decreases or gradually increases from the middle position of the skeleton 3 to the two ends. Adjacent supports can be nested, forming a large ring nested within a small ring structure.

[0049] In this embodiment: Regarding the skeleton 3, the supporting bodies of the skeleton 1 are arranged in parallel at intervals and flexibly connected by the inflatable structure body 1, combining the rigidity of support with the flexibility of tension, and having the effect of no rigid resistance when stretched in the axial direction; the skeleton 3 in this embodiment includes two structural states after shrinkage: one is a telescopic nested structure, and the other is a telescopic superimposed structure. The telescopic nested structure is more advantageous than the telescopic superimposed structure because the telescopic superimposed structure combines the thicknesses of several skeletons 3 and the inflatable structure body 1 after shrinkage, resulting in a larger volume after storage. It is suitable for occasions where volume requirements are not strict, such as vehicle-mounted applications or fixed-position installations. However, it is somewhat insufficient for occasions where it needs to be carried and stored on the person. For occasions where it needs to be carried and stored on the person, the telescopic nested structure is used. In the telescopic nested structure, the skeletons 3 can be nested with each other, allowing the supporting bodies to be stored within the area enclosed by the largest supporting body, without the thickness stacking. The thickness depends on the thickness of the largest support. The deflated inflatable structure 1 fills the gaps between the nested supports, which not only does not take up extra space but is also more aesthetically pleasing. In addition, the largest support can be set as a storage box structure with a handle. All supports are nested in the support of the storage box structure. Adjacent supports are nested in rings, forming a large ring inside a small ring structure. The gaps between the nested rings accommodate the inflatable structure 1. The supports are spaced apart and arranged in parallel to ensure a small axial thickness after nesting and to ensure both flexibility and rigidity. This maximizes the flexibility in the axial direction, making it easy to stretch without resistance and quickly expand to form negative pressure. At the same time, it ensures radial rigidity to support the internal space of the inflatable structure 1 and ensures smooth air intake. Through the flexible and rigid skeleton structure 3, rapid stretching and maximum air intake space are achieved, ensuring the inflation effect.

[0050] In this embodiment, regarding the skeleton 3, the skeleton 3 includes several closed ring supports 5 or partially closed ring supports 6, wherein adjacent closed ring supports 5 or partially closed ring supports 6 can be nested or superimposed on each other. The supports of the skeleton 3 can be closed structures, partially closed structures, or approximately ring structures, all of which are within the scope of protection of this patent. They are not limited to regular rings. As long as they can be nested with each other, with larger ones nested inside smaller ones, they are within the scope of protection of this patent.

[0051] In this embodiment, regarding the skeleton 3, the support body is in the form of a closed or partially closed circle, ellipse, rectangle, trapezoid, or triangle. However, it is not limited to the above shapes, and the support body includes both fully closed and partially closed cases. Any shape that can achieve nesting or stacking functions can be listed as the shape described in this patent. Adjacent support bodies are flexibly connected and fixed by the inflatable structure body 1.

[0052] In this embodiment, regarding the skeleton 3, the material of the support can be plastic, wood, metal, or other materials with supporting properties, and is not limited to the above materials.

[0053] In this embodiment, regarding the skeleton 3, the skeleton can be set as a symmetrical structure, that is, the diameter of the support body at the center of the skeleton 3 is the largest or the smallest. When the diameter of the middle support body is the largest, the diameter of the support bodies gradually decreases from the middle to both ends; when the diameter of the middle support body is the smallest, the diameter of the support bodies gradually increases from the middle to both ends.

[0054] In this embodiment, regarding the skeleton 3, the optimal skeleton 3 has a double-cone symmetrical structure. The tops or bottoms of the two cones in the double-cone symmetrical structure are opposite each other. As for the size of the cone half-angle, it is based on the ability to achieve nesting of adjacent supports. The cone shape described in this patent is a quasi-cone structure, and the cone tip can be pointed or non-pointed. Non-pointed shapes include planes, arc surfaces, or inclined surfaces, such as a slender frustum structure. The double-cone structure not only ensures a better nesting effect but also a better inflation effect. It is easier to inflate than a columnar shape and ensures the realization of nesting. Using a columnar shape can achieve a stacked structure.

[0055] In this embodiment, regarding the skeleton 3, a support body with approximately equal diameter can also be used. Support bodies with approximately equal diameter can achieve the function of stacking, which is used to set up a telescopic stacking structure. This is suitable for occasions where the requirements for the storage volume and aesthetics are low. The storage effect and aesthetics of this structure are not as good as the telescopic nesting structure. Although this structure has some shortcomings, it can be applied to occasions where the requirements for storage volume are low. This structure is also included in the protection scope of this patent.

[0056] In this embodiment, regarding the skeleton 3, the skeleton 3 can be disposed on the inner surface, in the interlayer, or on the outer surface of the inflatable structure body 1. That is, the skeleton 3 can be disposed on the inner surface of the inflatable structure body 1 and fixedly connected to the inner surface of the inflatable structure; when the inflatable structure body 1 is double-layered, the skeleton 3 can be disposed in the interlayer; the skeleton 3 can also be disposed on the outer surface of the inflatable structure body 1; the connection method between the skeleton 3 and the inflatable structure body 1 can be adhesive connection, snap-fit ​​connection, thermal bonding connection, etc., and is not limited to the above connection methods.

[0057] In this embodiment, regarding air intake and exhaust, an air intake and exhaust end can be provided on the inflatable structure body 1 or the frame 3, and an air valve 2 is provided at the air intake and exhaust end. The air valve 2 is a one-way valve. The air valve 2 is used to inflate the inflatable structure body 1. The air valve 2 is provided on the frame 3 or the inflatable structure body 1. The air valve 2 can be a one-way valve or a valve 2 with a similar one-way valve function. It is not limited to a one-way valve. A manually operated inflation / exhaust valve 2 can also be used. The air intake and exhaust end can also be without an air valve 2. It is necessary to manually and quickly close the air intake and exhaust end. This is also within the scope of protection of this patent, but the effect is not as good as using an air valve 2.

[0058] In this embodiment, regarding the working principle, when the two ends of the skeleton 3 with telescopic nesting or telescopic superposition functions are pulled, or when the two ends of the inflatable structure body 1 are pulled, a negative pressure is formed inside the inflatable structure body 1. External gas enters the inflatable structure body 1 through the air intake and exhaust ends, inflating the inflatable structure body 1. This enables the inflatable structure body 1 to inflate when the skeleton 3 is pulled. The inflatable structure body 1 flexibly connects adjacent skeletons 3, combining rigidity and flexibility. It is almost completely flexible in the axial direction and rigidly supported in the radial direction. The radial direction supports the air intake space, while the axial direction ensures stretchability and flexibility, thereby achieving the best air intake effect.

[0059] In this embodiment, a locking structure is also included. The locking structure is used to connect the two ends of the inflatable structure body 1. The locking structure can be a male and female plug-in buckle, with the female buckle and male buckle respectively set at the two ends of the inflatable structure body 1. However, it is not limited to a male plug-in buckle. A rope or other structure that can connect and fix the two ends of the inflatable structure body 1 can also be used. As long as the two ends of the buoyancy device can be connected, it is within the scope of protection of this patent.

[0060] In this embodiment, the supports at both ends of the frame 3 are provided with snap fasteners or magnets that attract each other. When the frame 3 is retracted, they snap together, which can achieve a fixed shape after storage and make it easy to carry. The specific fixing structure can adopt existing technology. The main purpose is to fix the buoyancy device in a retracted state. Example 2

[0061] Based on Embodiment 1, the skeleton 3 is configured as a spiral structure 7. In this embodiment, the skeleton 3 is a spiral structure 7, which can be extended and nested or extended and stacked. The spiral diameter of the spiral structure 7 gradually decreases or gradually increases from the middle position of the skeleton 3 to both ends. The positions with the largest or smallest diameter are near the middle position or in the center, all of which are within the protection scope of this patent. That is, it is a long strip-shaped rugby ball or C-shaped structure. In this embodiment, the skeleton 3 can be integrally formed or it can be a spliced ​​structure in the form of a tower-shaped spring structure. The splicing method can be that the bottom of the tower-shaped spring structure is spliced ​​together or the top of the tower-shaped spring structure is spliced ​​together.

[0062] In this embodiment, regarding the skeleton of the spiral structure, when the spiral structure 7 is used, the skeleton 3 is made of a material with supporting and elastic properties, such as plastic or metal that can achieve the function of stretching.

[0063] In this embodiment, regarding the skeleton of the spiral structure, when the spiral structure 7 is made of a material with low elasticity, the inflation of the inflatable structure body 1 is achieved by stretching. Compared with the structure of embodiment 1, this structure has a certain rigidity in the axial direction because the axial spiral structure 7 is continuous and non-interval. Its tensile flexibility is not as good as that of embodiment 1, but it can be applied to occasions with a large number of strong people and is also within the protection scope of this patent.

[0064] In this embodiment, regarding the skeleton of the spiral structure, there is an optimal solution for the spiral structure 7: that is, the spiral structure 7 is made of a material with high elasticity and has spring properties. When a material with high elasticity is used, the spiral structure 7 can be stored in a storage bag when not in use. As long as it is taken out, the inflatable structure body 1 will quickly and automatically extend under the action of the elasticity of the spiral structure 7, thereby achieving rapid inflation. This has a good effect even for people with insufficient strength or insufficient arm extension distance. In addition, the inflation efficiency is higher.

[0065] In this embodiment, regarding the skeleton of the spiral structure, the spiral structure 7 can be set as a telescopic nested structure, and the largest support can be set as a storage box, which ensures the effect of minimizing storage volume while also having the effect of rapid inflation.

[0066] In this embodiment, regarding the spiral structure frame, if snap fasteners or magnets are provided at both ends of the frame 3, elastic and rapid inflation can be achieved simply by pulling open the snap fasteners or magnets.

[0067] In this embodiment, regarding the skeleton of the spiral structure, the spiral structure 7 can also be set as a telescopic stacking structure. The telescopic stacking structure will have a larger volume after being stored, making it inconvenient to carry around. It is suitable for occasions where the storage volume requirement is not strict, such as vehicle-mounted or fixed-location installation. Example 3

[0068] Based on Embodiments 1 and 2, the inflatable structure body 1 and the frame 3 are integrally molded or spliced ​​together to form a sealed structure. One type of structure is integral molding, where rigid support structures resembling ribs are machined onto the inflatable structure body 1 at corresponding positions of the frame 3 during processing. The structure is arranged in a regular pattern of parallel, spaced-apart support structures or a spiral structure 7. Another structural form is splicing, where the inflatable structure body 1 is no longer an integrally molded structure but is composed of several pieces spliced ​​together. The seams between these pieces form the frame 3 structure, which adopts the frame 3 structure form of Embodiment 1 or Embodiment 2. Example 4

[0069] The assembly method of this patent includes:

[0070] The frame 3, which has the function of telescopic nesting or telescopic stacking, is combined with the inflatable structure body 1, or integrally formed or spliced, wherein the frame 3 or the inflatable structure body 1 is provided with an air valve 2.

[0071] The locking structure is set at both ends of the frame 3 or the inflatable structure body 1.

[0072] The frame 3 can be set inside the inflatable structure body 1 or outside the inflatable structure body 1, or when the inflatable structure body 1 has a sandwich, it can be set in the sandwich, or the inflatable structure body 1 sheet structure can be spliced ​​with the frame 3, and the frame 3 can be set at the seam of the sheet.

[0073] Alternatively, the inflatable structure body 1 can be integrally molded during the manufacturing process to form a matching skeleton 3-rib structure.

[0074] The assembly described in this embodiment is not limited to assembly; integral molding and assembly through processing technology also fall within the scope of protection of this patent assembly. Example 5

[0075] The method of using this patent includes:

[0076] By pulling and extending both ends of the skeleton 3, which has the function of telescopic nesting or telescopic superposition, or by pulling and extending both ends of the inflatable structure body 1, a negative pressure is formed inside the inflatable structure body 1, and external gas enters the inflatable structure body 1 through the air valve 2 to inflate the inflatable structure body 1;

[0077] or,

[0078] The inflatable structure body 1 is elastically supported by a spiral structure 7 frame 3, creating a negative pressure inside the inflatable structure body 1. External gas enters the inflatable structure body 1 through the air valve 2, inflating it. When removed from the storage bag, the compressed spiral structure frame automatically extends under the elastic force, thereby causing the inflatable structure body to extend and automatically inflate. This structure and utility model concept eliminates the need for further stretching, making it particularly suitable for people with limited strength or short arms. Alternatively, the locking pieces at both ends of the spiral structure frame can be pulled to release the lock and achieve elastic support for inflation.

[0079] A ring structure is formed by connecting the two ends of a long strip-shaped water buoyancy device.

[0080] A ring-shaped buoyancy device is fitted onto a person's body.

[0081] Alternatively, it can be used as a long strip, connected to one end of the inflatable structure body 1 via a traction rope, and then connected to the human body.

[0082] Working principle:

[0083] When the user pulls both ends of the buoyancy device, the frame 3 provides support, creating a negative pressure inside the buoyancy device. Air enters the buoyancy device through the air intake and exhaust ends, achieving rapid inflation.

[0084] Alternatively, when using a frame 3 with a spiral structure 7 made of a material with greater elasticity, the buckles that are fastened together at both ends of the frame 3 can be removed from the storage bag or pulled open. Under the elastic action of the spiral structure 7, the frame 3 will automatically pop open and support the inflatable structure body 1, achieving rapid and automatic inflation.

[0085] After the user wraps the buoyancy device around their waist and abdomen and secures it with the locking mechanism, the support structure near the body will shorten. As the internal volume of the buoyancy device decreases, the air inside will be compressed, thus increasing the air pressure. If the internal air pressure is still insufficient, the user can also use their mouth to blow air through the one-way air inlet valve 2 to make up for it.

[0086] The retractable nested structure of the skeleton 3 enables nested storage, achieving a smaller storage volume and making it easy to carry.

[0087] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:

[0088] The inflatable structure body 1 is formed by fitting or integrally molding a frame 3 with a telescopic nesting or stacking function, wherein an air valve 2 is provided on the frame 3 or the inflatable structure body 1. By pulling and extending both ends of the frame 3 with telescopic nesting or stacking function, or by pulling and extending both ends of the inflatable structure body 1, a negative pressure is created inside the inflatable structure body 1. External gas enters the inflatable structure body 1 through the air valve 2, inflating the inflatable structure body 1. This achieves rapid inflation of the inflatable structure body 1, providing the technical advantages of convenient portability and rapid inflation.

[0089] By setting the skeleton 3 as a telescopic nested structure, a smaller volume can be achieved after storage, with several supports nested within the largest support.

[0090] By setting the frame 3 as a telescopic nested spiral structure 7, not only is a smaller volume achieved after storage, but it also allows for easy removal from the storage bag or unhooking of the two ends. The spiral structure 7's elasticity allows it to automatically spring open and support the inflatable structure body 1, enabling rapid and automatic inflation. Setting the frame 3 as a conical symmetrical structure improves inflation performance and facilitates connecting the two ends to form a loop structure after inflation.

[0091] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A buoyancy device for water, characterized in that, include: An inflatable structural body, wherein the inflatable structural body is a strip-shaped structure; The skeleton, which cooperates with the inflatable structure body, is a telescopic nested structure or a telescopic superimposed structure, and is used to support the inflatable structure body. The inflatable structure body or frame is equipped with air intake and exhaust ends.

2. The buoyancy device as described in claim 1, characterized in that, The skeleton includes several closed ring supports or partially closed ring supports, wherein adjacent closed ring supports or partially closed ring supports can be nested or superimposed on each other.

3. The buoyancy device as described in claim 1, characterized in that, The skeleton is a spiral structure, which can be stretched and nested or stretched and superimposed.

4. The buoyancy device as described in claim 1, characterized in that, When the skeleton is a telescopic nested structure, the diameter of the skeleton first increases and then decreases from one end, or the diameter of the skeleton first decreases and then increases from one end.

5. The buoyancy device as described in claim 1, characterized in that, The skeleton is set on the inner surface, interlayer, or outer surface of the inflatable structure body.

6. The buoyancy device as described in claim 1, characterized in that, The air intake and exhaust ends are equipped with air valves.

7. The buoyancy device as described in claim 6, characterized in that, The air valve is a one-way valve.

8. The buoyancy device as described in claim 2, characterized in that, The support body is in the form of a closed or partially closed circle, ellipse, rectangle, trapezoid, or triangle.

9. The buoyancy device as described in claim 1, characterized in that, The inflatable structure body and the frame are integrally formed or the inflatable structure body and the frame are spliced ​​together to form a sealed structure.

10. The buoyancy device as described in claim 1, characterized in that, When the two ends of the skeleton with telescopic nesting or telescopic superposition functions are pulled, or when the two ends of the inflatable structure body are pulled, a negative pressure is formed inside the inflatable structure body. External gas enters the inflatable structure body through the air inlet and exhaust ends, inflating the inflatable structure body or automatically expanding and inflating under the elastic force of the spiral structure.