A pneumatic air bag massage assembly capable of rapid inflation and deflation

CN224612890UActive Publication Date: 2026-08-11SHENZHEN CHUANGKE VISION ELECTRONICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-19
Publication Date
2026-08-11

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Abstract

This utility model discloses a rapid-inflation and deflation pneumatic airbag massage component, relating to the field of massage equipment technology. It includes a flexible base pad and auxiliary components. The lower surface of the flexible base pad is provided with a wear-resistant protective layer. The auxiliary components are disposed on the surface of the flexible base pad and include elastic connecting horizontal bars, elastic connecting vertical bars, strip-shaped Velcro, an auxiliary airbag, an inflation / deflation port, a telescopic hose, a multi-port connecting pipe, and an auxiliary air pump. The front surface of the flexible base pad is connected to the elastic connecting horizontal bars, and the side surface of the flexible base pad is provided with elastic connecting vertical bars. The flexible base pad, the elastic connecting horizontal bars, and the elastic connecting vertical bars are all tightly connected integrated structures. This rapid-inflation and deflation pneumatic airbag massage component, through the auxiliary components, enables the device to achieve millisecond-level response and precise pressure application at the massage position, making it convenient to operate and highly flexible. The reinforced components effectively enhance the airbag performance, improving both cushioning force and comfort.
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Description

Technical Field

[0001] This utility model relates to the field of massage equipment technology, specifically to a pneumatic airbag massage component that can be rapidly inflated and deflated. Background Technology

[0002] A pneumatic airbag massager is a device that uses air pressure to inflate and deflate airbags, simulating kneading, pressing, and other massage movements. Its core components include airbags, an air pump, and a valve system. By precisely controlling the inflation and deflation rhythm and pressure, it achieves a wrap-around relaxation effect, making it particularly suitable for areas difficult for robotic arms to reach, such as the shoulders and legs. It is mainly used in massage chairs, car seats, and health devices such as lumbar supports or eye protectors to relieve muscle fatigue or aid in rehabilitation. However, current pneumatic airbag massagers still have the following shortcomings:

[0003] For example, patent document CN222828803U discloses an airbag massage pad. This airbag massage pad has two spaced-apart clamping airbags placed on a support pad. When the inflation and deflation times of the two clamping airbags are synchronized, the clamping airbags can compress the opposite sides of the area to be massaged. When the inflation and deflation times of the two clamping airbags are staggered, the clamping airbags can swing or turn over the area to be massaged. The massage effect is good, but the inflation and deflation response time is relatively slow, and it cannot achieve precise pressure application to the massage position. It is easy to cause muscle discomfort due to sudden pressure changes. Utility Model Content

[0004] The purpose of this invention is to provide a pneumatic airbag massage component that can be rapidly inflated and deflated, in order to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a pneumatic airbag massage component for rapid inflation and deflation, comprising a flexible base pad and an auxiliary component. The lower surface of the flexible base pad is provided with a wear-resistant protective layer. The auxiliary component is disposed on the surface of the flexible base pad and includes an elastic connecting horizontal strip, an elastic connecting vertical strip, a strip-shaped Velcro, an auxiliary airbag, an inflation / deflation port, a telescopic hose, a multi-port connecting pipe, and an auxiliary air pump. The front surface of the flexible base pad is connected to the elastic connecting horizontal strip, and the side surface of the flexible base pad is provided with an elastic connecting vertical strip. The flexible base pad, the elastic connecting horizontal strip, and the elastic connecting vertical strip are all integrally structured with tight connections. The outer surface of the flexible base pad is connected to the strip-shaped Velcro, and eight sets of the strip-shaped Velcro are symmetrically arranged.

[0006] Furthermore, an auxiliary airbag is installed on the upper surface of the flexible base pad, and an inflation / deflation port is provided on the outer surface of the auxiliary airbag.

[0007] Furthermore, a telescopic hose is threadedly connected to the inner side of the inflation / deflation port, and a multi-connector pipe is installed at the outer end of the telescopic hose.

[0008] Furthermore, an auxiliary air pump is installed at the outer end of the multi-port connecting pipe, and two sets of auxiliary air pumps are symmetrically arranged.

[0009] Furthermore, the auxiliary airbag is made of medical-grade silicone, and the surface of the auxiliary airbag is provided with reinforcing components to strengthen the airbag.

[0010] Furthermore, the reinforcing components include a smart sensing layer, a dynamic buffer layer, a nano-coated polyurethane film, and a high-strength pressure-bearing layer, with the smart sensing layer disposed on the inner surface of the auxiliary airbag.

[0011] Furthermore, the intelligent sensing layer is provided with an embedded piezoresistive sensor array, and a dynamic buffer layer is provided on the inner surface of the intelligent sensing layer, the dynamic buffer layer having a built-in honeycomb silicone interlayer.

[0012] Furthermore, the inner surface of the dynamic buffer layer is provided with a nano-coated polyurethane film, and the inner surface of the nano-coated polyurethane film is provided with a high-strength pressure-bearing layer, which is made of aramid fiber reinforced TPU composite material.

[0013] This invention provides a pneumatic airbag massage component that allows for rapid inflation and deflation, offering the following advantages:

[0014] 1. This utility model incorporates auxiliary components, including elastic connecting horizontal bars, elastic connecting vertical bars, strip Velcro, auxiliary airbags, inflation / deflation ports, telescopic hoses, multi-way connecting pipes, and an auxiliary air pump. In use, eight sets of flexible base pads are connected together by the elastic connecting horizontal and vertical bars, facilitating folding and storage of the flexible base pads. This also allows the entire device to be wrapped around the area requiring massage. The strip Velcro secures the pads, and the telescopic hoses are sealed to the inflation / deflation ports, connecting the auxiliary air pump and auxiliary airbags. By connecting auxiliary airbags at different locations, massage can be applied to different areas. The auxiliary airbags can also be used for inflation / deflation, enabling rapid inflation and deflation. This allows the device to achieve millisecond-level response and precise pressure application at the massage location, making it convenient and highly flexible to operate.

[0015] 2. This utility model incorporates a reinforcing component, which includes an intelligent sensing layer, a dynamic buffer layer, a nano-coated polyurethane membrane, and a high-strength pressure-bearing layer. During use, the high-strength pressure-bearing layer, made of aramid fiber-reinforced TPU composite material, withstands the main working pressure and prevents bursting. The nano-coated polyurethane membrane achieves millisecond-level inflation and deflation response through its microporous structure. The dynamic buffer layer absorbs impact energy and disperses pressure peaks through a honeycomb-shaped silicone interlayer. The intelligent sensing layer features an embedded piezoresistive sensor array, enabling real-time monitoring of pressure distribution and deformation. This design effectively enhances the airbag's performance, improving both cushioning force and comfort. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of a pneumatic airbag massage component for rapid inflation and deflation according to the present invention.

[0017] Figure 2 This is a three-dimensional structural diagram of the flexible base pad of a pneumatic airbag massage component that can be rapidly inflated and deflated according to this utility model.

[0018] Figure 3 This is a three-dimensional structural diagram of the auxiliary component of a pneumatic airbag massage assembly that can be rapidly inflated and deflated according to this utility model.

[0019] Figure 4 This is a three-dimensional structural diagram of the reinforcing component of a pneumatic airbag massage assembly that can be rapidly inflated and deflated according to this utility model.

[0020] In the diagram: 1. Flexible base pad; 2. Wear-resistant protective layer; 3. Auxiliary components; 301. Elastic connecting horizontal bar; 302. Elastic connecting vertical bar; 303. Strip Velcro; 304. Auxiliary airbag; 305. Inflation / depression port; 306. Telescopic hose; 307. Multi-port connecting pipe; 308. Auxiliary air pump; 4. Reinforcing components; 401. Energy sensing layer; 402. Dynamic buffer layer; 403. Nano-coated polyurethane membrane; 404. High-strength pressure-bearing layer. Detailed Implementation

[0021] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0022] like Figures 1 to 4 As shown, a pneumatic airbag massage component with rapid inflation and deflation includes a flexible base pad 1 and an auxiliary component 3. The lower surface of the flexible base pad 1 is provided with a wear-resistant protective layer 2. The auxiliary component 3 is disposed on the surface of the flexible base pad 1 and includes an elastic connecting horizontal bar 301, an elastic connecting vertical bar 302, a strip-shaped Velcro closure 303, an auxiliary airbag 304, an inflation / deflation port 305, a telescopic hose 306, a multi-way connecting pipe 307, and an auxiliary air pump 308. The front surface of the flexible base pad 1 is connected to the elastic connecting horizontal bar 301, and the side surface of the flexible base pad 1 is provided with the elastic connecting vertical bar 302. 1. The elastic connecting horizontal bar 301 and the elastic connecting vertical bar 302 are both tightly connected integrated structures, and the outer surface of the flexible base pad 1 is connected with strip hook and loop fasteners 303. Eight sets of strip hook and loop fasteners 303 are symmetrically arranged. An auxiliary airbag 304 is installed on the upper surface of the flexible base pad 1, and an inflation / deflation port 305 is provided on the outer surface of the auxiliary airbag 304. A telescopic hose 306 is threadedly connected to the inner side of the inflation / deflation port 305, and a multi-port connecting pipe 307 is installed at the outer end of the telescopic hose 306. An auxiliary air pump 308 is installed at the outer end of the multi-port connecting pipe 307, and two sets of auxiliary air pumps 308 are symmetrically arranged.

[0023] The specific operation is as follows: When in use, the eight sets of flexible base pads 1 are connected together by elastic connecting horizontal strips 301 and elastic connecting vertical strips 302, which makes it easy to fold and store the flexible base pads 1. At the same time, it is easy to wrap the whole device around the area that needs to be massaged. It is fixed by strip Velcro 303 and sealed to the inflation / deflation port 305 by telescopic hose 306. It connects to auxiliary air pump 308 and auxiliary airbag 304. By connecting auxiliary airbags 304 at different positions, massage can be performed on different positions. The auxiliary airbag 304 can also be used for inflation and deflation, so as to achieve rapid inflation and deflation.

[0024] Please refer to Figure 4 The auxiliary airbag 304 is made of medical-grade silicone, and the surface of the auxiliary airbag 304 is provided with a reinforcing component 4 for strengthening the airbag. The reinforcing component 4 includes a smart sensing layer 401, a dynamic buffer layer 402, a nano-coated polyurethane film 403, and a high-strength pressure-bearing layer 404. The smart sensing layer 401 is provided on the inner surface of the auxiliary airbag 304. The smart sensing layer 401 is provided with an embedded piezoresistive sensor array. The inner surface of the smart sensing layer 401 is provided with a dynamic buffer layer 402. The dynamic buffer layer 402 has a built-in honeycomb silicone interlayer. The inner surface of the dynamic buffer layer 402 is provided with a nano-coated polyurethane film 403. The inner surface of the nano-coated polyurethane film 403 is provided with a high-strength pressure-bearing layer 404. The high-strength pressure-bearing layer 404 is made of aramid fiber reinforced TPU composite material.

[0025] The specific operation is as follows: When in use, the high-strength pressure-bearing layer 404 is made of aramid fiber reinforced TPU composite material, which is used to withstand the main working pressure and prevent bursting. The nano-coated polyurethane membrane 403 achieves millisecond-level inflation and deflation response through microporous structure. The dynamic buffer layer 402 absorbs impact energy and disperses pressure peaks through honeycomb silicone interlayer. The intelligent sensing layer 401 is equipped with an embedded piezoresistive sensor array, which can monitor pressure distribution and deformation in real time.

[0026] In summary, as Figures 1 to 4As shown, this rapid inflation / deflation pneumatic airbag massage assembly, in use, firstly, connects eight sets of flexible base pads 1 together via elastic connecting horizontal strips 301 and elastic connecting vertical strips 302, facilitating the folding and storage of the flexible base pads 1, and also making it easy to wrap the entire device around the area requiring massage. It is then secured with strip Velcro 303, and sealed to the inflation / deflation port 305 via a telescopic hose 306. An auxiliary air pump 308 and auxiliary airbags 304 are connected, allowing massage of different areas by connecting auxiliary airbags 304 at different locations. The auxiliary airbags 304 can also perform inflation / deflation operations, achieving rapid inflation / deflation. During use, the high-strength pressure-bearing layer 404, made of aramid fiber-reinforced TPU composite material, withstands the main working pressure and prevents bursting. The nano-coated polyurethane membrane 403 achieves millisecond-level inflation / deflation response through its microporous structure. The dynamic buffer layer 402 absorbs impact energy and disperses pressure peaks through a honeycomb silicone interlayer. The intelligent sensing layer 401 is equipped with an embedded piezoresistive sensor array, capable of real-time monitoring of pressure distribution and deformation.

[0027] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.

Claims

1. A pneumatic airbag massage assembly with rapid inflation and deflation, comprising a flexible base (1) and an auxiliary assembly (3), characterized in that: The flexible base pad (1) has a wear-resistant protective layer (2) on its lower surface. The auxiliary component (3) is disposed on the surface of the flexible base pad (1). The auxiliary component (3) includes an elastic connecting horizontal bar (301), an elastic connecting vertical bar (302), a strip hook and loop fastener (303), an auxiliary airbag (304), an inflation / deflation port (305), a telescopic hose (306), a multi-way connecting pipe (307), and an auxiliary air pump (308). The front surface of the flexible base pad (1) is connected to the elastic connecting horizontal bar (301), and the side surface of the flexible base pad (1) is provided with an elastic connecting vertical bar (302). The flexible base pad (1), the elastic connecting horizontal bar (301), and the elastic connecting vertical bar (302) are all tightly connected integrated structures. The outer surface of the flexible base pad (1) is connected to the strip hook and loop fastener (303), and eight sets of the strip hook and loop fastener (303) are symmetrically arranged.

2. The pneumatic airbag massage assembly with rapid inflation and deflation according to claim 1, characterized in that, An auxiliary airbag (304) is installed on the upper surface of the flexible base pad (1), and an inflation / deflation port (305) is provided on the outer surface of the auxiliary airbag (304).

3. The pneumatic airbag massage assembly with rapid inflation and deflation according to claim 1, characterized in that, The inner side of the inflation / deflation port (305) is threaded with a telescopic hose (306), and a multi-port connecting pipe (307) is installed at the outer end of the telescopic hose (306).

4. The pneumatic airbag massage assembly with rapid inflation and deflation according to claim 1, characterized in that, An auxiliary air pump (308) is installed at the outer end of the multi-way connecting pipe (307), and two sets of auxiliary air pumps (308) are symmetrically arranged.

5. The pneumatic airbag massage assembly with rapid inflation and deflation according to claim 1, characterized in that, The auxiliary airbag (304) is made of medical-grade silicone, and the surface of the auxiliary airbag (304) is provided with a reinforcing component (4) for strengthening the airbag.

6. A pneumatic airbag massage assembly with rapid inflation and deflation according to claim 5, characterized in that, The reinforcing component (4) includes a smart sensing layer (401), a dynamic buffer layer (402), a nano-coated polyurethane film (403), and a high-strength pressure-bearing layer (404), with the smart sensing layer (401) disposed on the inner surface of the auxiliary airbag (304).

7. A pneumatic airbag massage assembly with rapid inflation and deflation according to claim 6, characterized in that, The intelligent sensing layer (401) is provided with an embedded piezoresistive sensor array, and a dynamic buffer layer (402) is provided on the inner surface of the intelligent sensing layer (401), the dynamic buffer layer (402) having a built-in honeycomb silicone interlayer.

8. A pneumatic airbag massage assembly with rapid inflation and deflation according to claim 6, characterized in that, The inner surface of the dynamic buffer layer (402) is provided with a nano-coated polyurethane film (403), and the inner surface of the nano-coated polyurethane film (403) is provided with a high-strength pressure-bearing layer (404), which is made of aramid fiber reinforced TPU composite material.

Citation Information

Patent Citations

  • Air bag type massage cushion

    CN222828803U