An inflatable support for men

CN122515928APending Publication Date: 2026-08-07张家水
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
张家水
Filing Date
2026-06-23
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0005]本发明提出了一种男性用充气式支架,解决了相关技术中充水假体因注水状态重量较大,增加患者身体负担与不适感,手动按压深植水泵难以控制压力流量,操作困难,且水泵在体内存在潜在安全风险的问题

Benefits of technology

[0015] This support structure employs an inflatable design. The cylindrical prosthesis within the support has two states: a first state, in which it is soft and relaxed; and a second state, in which the manual inflation component is connected to the manifold control unit in the air guide tube. Pressing the manual inflation component allows air to be delivered through the air guide tube into the cylindrical prosthesis, causing it to inflate and stand upright. The manual inflation component can then be disassembled from the manifold control unit. The one-way control valve in the manifold control unit automatically closes the passage, trapping the air within the cylindrical prosthesis. When deflation is required, the core of the one-way control valve is pressed. The one-way control valve, similar to a valve stem in a car, allows the air within the cylindrical prosthesis to be quickly expelled through the connector. This design utilizes an inflatable structure instead of a traditional water-filled prosthesis. The use of a gas medium reduces the overall weight of the cylindrical prosthesis when inflated, effectively alleviating the extra physical burden and discomfort experienced by patients during daily use. Furthermore, the manual inflation device and the manifold control unit in the air delivery system are detachably connected, allowing patients to easily deliver gas to the cylindrical prosthesis via the air delivery hose simply by pressing the manual inflation device. This convenient operation and easy control of the inflation volume overcome the shortcomings of traditional water pumps, which are difficult to control in terms of pressure and flow due to deep implantation and limitations imposed by surrounding tissues. In addition, the one-way control valve in the manifold control unit automatically closes the channel to cut off gas flow after the manual inflation device is removed, and rapid deflation is achieved by pressing the central core column. This effectively avoids the risks of leakage and malfunction that may exist in traditional water pumps, improving safety during use.

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Abstract

The present application relates to the technical field of inflatable support, and discloses a male inflatable support, which comprises a cylindrical prosthesis, a gas guide and a manual inflator, wherein the gas guide is connected with the cylindrical prosthesis, the manual inflator is detachably connected with the gas guide, and is used for conveying gas along the gas guide to the cylindrical prosthesis; and the cylindrical prosthesis has a first state and a second state, wherein in the first state, the cylindrical prosthesis is not inflated and is in a soft and relaxed state. The present application adopts the inflatable cylindrical prosthesis, the manual inflator is detachably connected with the current collection control part provided with a one-way valve, convenient inflation is realized, the one-way valve is automatically closed after being detached, and the core column is pressed to quickly deflate. The design replaces the liquid medium with the gas, reduces the weight of the filled prosthesis, reduces the burden of the patient, avoids the risk of difficult pressure control and easy leakage of the traditional water pump due to deep implantation position, and is safe and convenient to operate.
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Description

Technical Field

[0001] This invention relates to the field of inflatable support technology, and more particularly to an inflatable support for men. Background Technology

[0002] Currently, surgical treatment for erectile dysfunction in men requires the implantation of a prosthetic spur within the penis. This typically includes a pair of cylindrical prostheses implanted within the corpora cavernosa, a reservoir implanted behind the pubis or in the abdominal cavity, and a manually operated water pump connecting the two. This water pump needs to be implanted subcutaneously in the scrotum or lower abdomen. However, there are some limitations in its use:

[0003] The implant has a certain weight when it is filled with water, which may put a burden on the patient during use and cause additional physical burden and discomfort in daily use. In addition, the water pump inside the body needs to be manually pressed. Due to the deep implantation location and the restriction of surrounding tissues, it is difficult for the patient to control the pressure and flow rate in actual use, making the operation difficult. Furthermore, there are certain risks associated with the water pump itself.

[0004] To address the aforementioned issues, this application proposes an inflatable support for men. Summary of the Invention

[0005] This invention proposes an inflatable stent for men, which solves the problems of related technologies, such as the large weight of water-filled prostheses when filled with water, which increases the burden and discomfort on the patient's body, the difficulty in controlling the pressure and flow rate by manually pressing the deep-implanted water pump, the difficulty in operation, and the potential safety risks of the water pump inside the body.

[0006] The present invention provides an inflatable male prosthesis, comprising a cylindrical prosthesis, an air guide, and a manual inflation device;

[0007] The air guide is connected to the cylindrical prosthesis, and the manual inflation device is detachably connected to the air guide, used to deliver gas through the air guide to the cylindrical prosthesis;

[0008] The cylindrical prosthesis has a first state and a second state. In the first state, the cylindrical prosthesis is not inflated and is in a soft and relaxed state. In the second state, the manual inflation device fills the cylindrical prosthesis with gas through the air guide device, and the cylindrical prosthesis is in an inflated and upright state.

[0009] As a further optimization of the present invention, the air guiding component includes an air guiding hose and a manifold control unit, the number of cylindrical prostheses is at least two, the bottom ends of at least two cylindrical prostheses are connected to air guiding hoses, and the manifold control unit is connected to the end of the air guiding hose away from the cylindrical prosthesis.

[0010] As a further optimization of the present invention, the manifold control unit includes a connector and a one-way control valve. The connector is connected to the end of the air guide hose away from the cylindrical prosthesis. The one-way control valve is installed on the connector. The manual inflation component is detachably connected to the connector.

[0011] As a further optimization of the present invention, the manual inflation component includes a tubular docking part and a manual airbag, the tubular docking part and the connector are detachably connected, and the manual airbag is connected to the end of the tubular docking part.

[0012] As a further optimization of the present invention, the tubular docking part includes an inflatable hose and an inflatable head. The manual airbag is connected to one end of the inflatable hose, and the inflatable head is connected to the end of the inflatable hose away from the manual airbag. The inflatable head and the connector are plugged into each other.

[0013] As a further optimization of the present invention, the top of the cylindrical prosthesis is arc-shaped.

[0014] The above-described technical solution of the present invention has the following beneficial technical effects:

[0015] This support structure employs an inflatable design. The cylindrical prosthesis within the support has two states: a first state, in which it is soft and relaxed; and a second state, in which the manual inflation component is connected to the manifold control unit in the air guide tube. Pressing the manual inflation component allows air to be delivered through the air guide tube into the cylindrical prosthesis, causing it to inflate and stand upright. The manual inflation component can then be disassembled from the manifold control unit. The one-way control valve in the manifold control unit automatically closes the passage, trapping the air within the cylindrical prosthesis. When deflation is required, the core of the one-way control valve is pressed. The one-way control valve, similar to a valve stem in a car, allows the air within the cylindrical prosthesis to be quickly expelled through the connector. This design utilizes an inflatable structure instead of a traditional water-filled prosthesis. The use of a gas medium reduces the overall weight of the cylindrical prosthesis when inflated, effectively alleviating the extra physical burden and discomfort experienced by patients during daily use. Furthermore, the manual inflation device and the manifold control unit in the air delivery system are detachably connected, allowing patients to easily deliver gas to the cylindrical prosthesis via the air delivery hose simply by pressing the manual inflation device. This convenient operation and easy control of the inflation volume overcome the shortcomings of traditional water pumps, which are difficult to control in terms of pressure and flow due to deep implantation and limitations imposed by surrounding tissues. In addition, the one-way control valve in the manifold control unit automatically closes the channel to cut off gas flow after the manual inflation device is removed, and rapid deflation is achieved by pressing the central core column. This effectively avoids the risks of leakage and malfunction that may exist in traditional water pumps, improving safety during use. Attached Figure Description

[0016] Figure 1This is a schematic diagram of the overall structure of an inflatable male support proposed in this invention;

[0017] Figure 2 This is a schematic diagram of the mating structure between the air guide and the tubular connection part in this invention;

[0018] Figure 3 For the present invention Figure 2 Enlarged view of A in the middle;

[0019] Figure 4 This is a schematic diagram of the manually inflatable component in this invention.

[0020] Reference numerals: 1. Cylindrical prosthesis; 2. Air guide; 21. Air guide hose; 22. Manifold control unit; 221. Connector; 222. One-way control valve; 3. Manual inflation component; 31. Tubular connection; 311. Inflation hose; 312. Inflation head; 32. Manual airbag. Detailed Implementation

[0021] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to specific embodiments and the accompanying drawings. It should be understood that these descriptions are merely exemplary and not intended to limit the scope of the invention. Furthermore, descriptions of well-known structures and techniques are omitted in the following description to avoid unnecessarily obscuring the concept of the invention.

[0022] like Figure 1-4 As shown, the present invention proposes an inflatable male support, comprising a cylindrical prosthesis 1, an air guide 2, and a manual inflation component 3;

[0023] The air guide 2 is connected to the cylindrical prosthesis 1, and the manual inflation component 3 is detachably connected to the air guide 2, used to deliver gas through the air guide 2 into the cylindrical prosthesis 1;

[0024] The cylindrical prosthesis 1 has a first state and a second state. In the first state, the cylindrical prosthesis 1 is not inflated and is in a soft and relaxed state. In the second state, the manual inflation component 3 inflates the gas into the cylindrical prosthesis 1 through the air guide component 2, and the cylindrical prosthesis 1 is in an inflated and upright state.

[0025] The male inflatable prosthesis provided by this invention is initially in a first state, that is, the cylindrical prosthesis 1 is not filled with gas, its material is soft, and its overall shape is loose. When the patient needs the prosthesis to provide support, the manual inflation component 3 is connected to the air guide component 2. By repeatedly pressing the manual inflation component 3, the external air is compressed and continuously transported to the inside of the cylindrical prosthesis 1 through the air guide component 2. As the gas gradually fills, the internal pressure of the cylindrical prosthesis 1 increases, and its hardness and uprightness increase until it reaches the second state that meets the needs of use, that is, the fully inflated and upright state. In this process, since gas is used as the filling medium, compared with traditional water-filled prostheses, the overall weight of the cylindrical prosthesis 1 in the upright state is reduced, which effectively reduces the physical burden on the patient during use and avoids the discomfort of falling due to gravity. At the same time, through the external operation of the manual inflation component 3, the patient can flexibly control the inflation volume, which improves the convenience of use.

[0026] In this embodiment, the air guide 2 includes an air guide hose 21 and a manifold control unit 22. The number of cylindrical prostheses 1 is at least two, and the bottom ends of at least two cylindrical prostheses 1 are connected to the air guide hose 21. The manifold control unit 22 is connected to the end of the air guide hose 21 away from the cylindrical prosthesis 1.

[0027] The compressed gas generated by the manual inflation component 3 first enters the manifold control unit 22. Then, through the distribution function of the manifold control unit 22, the gas is evenly distributed to each air guide hose 21, and then synchronously delivered to each cylindrical prosthesis 1. This avoids the problems of asymmetrical shape or uneven distribution of support force caused by asynchronous inflation. When deflation occurs, the gas in each cylindrical prosthesis 1 can also flow back to the manifold control unit 22 through its respective air guide hose 21 and be discharged, realizing synchronous deflation and allowing the entire support to quickly return to the soft and relaxed first state.

[0028] In this embodiment, the manifold control unit 22 includes a connector 221 and a one-way control valve 222. The connector 221 is connected to the end of the air guide hose 21 away from the cylindrical prosthesis 1. The one-way control valve 222 is installed on the connector 221. The manual inflation component 3 is detachably connected to the connector 221.

[0029] When the manual inflation component 3 is connected to the connector 221, the gas generated by pressing the manual inflation component 3 enters the air guide hose 21 through the connector 221 and passes smoothly through the opening pressure of the one-way control valve 222 to inflate the cylindrical prosthesis 1. After inflation is completed and the manual inflation component 3 is removed from the connector 221, the valve core inside the one-way control valve 222 automatically resets under the action of spring force or air pressure difference, closing the gas passage. This is existing technology and will not be elaborated on here. This effectively intercepts the gas in the cylindrical prosthesis 1, maintains a stable inflation pressure, and prevents gas leakage from causing the stent to soften. When the patient needs to stop using the device, they only need to press the core column in the middle of the one-way control valve 222, which is similar to the structure of a car valve core, to force open the valve port. The compressed gas in the cylindrical prosthesis 1 can then be quickly discharged out through the connector 221, achieving rapid deflation. The above structure avoids the safety hazards such as leakage and mechanical failure that may exist in traditional internal water pumps.

[0030] In this embodiment, the manual inflation component 3 includes a tubular docking part 31 and a manual airbag 32. The tubular docking part 31 is detachably connected to the connector 221, and the manual airbag 32 is connected to the end of the tubular docking part 31. The tubular docking part 31 includes an inflation hose 311 and an inflation head 312. The manual airbag 32 is connected to one end of the inflation hose 311, and the inflation head 312 is connected to the end of the inflation hose 311 away from the manual airbag 32. The inflation head 312 is inserted into the connector 221.

[0031] In use, the inflation head 312 is plugged into the connector 221 to form a sealed gas passage. The compressed gas generated by the patient pressing the manual airbag 32 is guided to the inflation head 312 through the inflation hose 311, and then enters the air delivery hose 21 through the connector 221, and is distributed into the cylindrical prosthesis 1 through the air delivery hose 21.

[0032] It should be noted that the manual airbag 32 in this embodiment adopts the same airbag structure as medical blood pressure measurement, which is existing technology and will not be elaborated on here.

[0033] In this embodiment, the top of the cylindrical prosthesis 1 is arc-shaped.

[0034] The top of the cylindrical prosthesis 1 is designed to be arc-shaped. This smooth head structure can effectively reduce the risk of friction and puncture to the inner wall of the corpus cavernosum when implanted into the corpus cavernosum, thereby reducing implantation trauma and postoperative inflammatory response.

[0035] The embodiments of the present invention have been described above, but the embodiments are not limited to the specific implementation methods described above. The specific implementation methods described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of the embodiments described above, all of which are within the protection scope of the embodiments described above.

Claims

1. An inflatable support for a male, characterized in that, It includes a cylindrical prosthesis (1), an air guide (2), and a manual inflation device (3); The air guide (2) is connected to the cylindrical prosthesis (1), and the manual inflation device (3) is detachably connected to the air guide (2) for conveying gas through the air guide (2) into the cylindrical prosthesis (1); The cylindrical prosthesis (1) has a first state and a second state. In the first state, the cylindrical prosthesis (1) is not inflated and is in a soft and relaxed state. In the second state, the manual inflation component (3) fills the cylindrical prosthesis (1) with gas through the air guide component (2) and the cylindrical prosthesis (1) is in a full and upright state.

2. The male inflatable support according to claim 1, characterized in that, The air guide (2) includes an air guide hose (21) and a manifold control unit (22). The number of cylindrical prostheses (1) is at least two. The bottom ends of at least two cylindrical prostheses (1) are connected to air guide hoses (21). The manifold control unit (22) is connected to the end of the air guide hose (21) away from the cylindrical prosthesis (1).

3. The male inflatable support according to claim 2, characterized in that, The manifold control unit (22) includes a connector (221) and a one-way control valve (222). The connector (221) is connected to the end of the air guide hose (21) away from the cylindrical prosthesis (1). The one-way control valve (222) is installed on the connector (221). The manual inflation component (3) is detachably connected to the connector (221).

4. The male inflatable support according to claim 3, characterized in that, The manual inflation component (3) includes a tubular docking part (31) and a manual airbag (32). The tubular docking part (31) is detachably connected to the connector (221), and the manual airbag (32) is connected to the end of the tubular docking part (31).

5. A male inflatable support according to claim 4, characterized in that, The tubular docking part (31) includes an inflation hose (311) and an inflation head (312). The manual airbag (32) is connected to one end of the inflation hose (311), and the inflation head (312) is connected to the end of the inflation hose (311) away from the manual airbag (32). The inflation head (312) is plugged into the connector (221).

6. A male inflatable support according to claim 1, characterized in that, The top of the cylindrical prosthesis (1) is arc-shaped.