Oxygen inhaler and oxyhydrogen system thereof

By introducing breath sensing devices and wireless communication devices into the hydrogen-oxygen system, the safety hazards of hydrogen-oxygen mixed gas are solved, safe mixing oxygen and hydrogen are achieved, and the therapeutic effect is improved.

CN222871097UActive Publication Date: 2025-05-16HEBEI SHANGSHI HEALTH TECH CO LTD
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Patent Information

Application Number
CN202420856158.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-04-23
Publication Date
2025-05-16
Estimated Expiration
2034-04-23

AI Technical Summary

Technical Problem

Existing hydrogen and oxygen machines have safety risks when outputting hydrogen and oxygen mixed gas, especially the safety is not high due to the relationship between the volume ratio of hydrogen and oxygen mixed gas and the explosion limit.

Method used

An oxygen inhaler and its hydrogen and oxygen system are designed to determine whether the nasal congestion tube is worn correctly through the breathing sensing device. If it falls off, the operation of the hydrogen and oxygen equipment will be stopped through the wireless communication device to prevent the hydrogen and oxygen mixture from accumulating in the sealed environment.

Benefits of technology

It effectively reduces the safety risks of hydrogen-oxygen mixed gas, ensures that the mixture of oxygen and hydrogen can be used safely, and at the same time improves the permeability and anti-inflammatory effects of oxygen, and enhances the therapeutic effect on lung diseases.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an oxygen inhaler and an oxyhydrogen system thereof, the oxygen inhaler comprises an oxygen hose and a hydrogen hose, one end of the oxygen hose and one end of the hydrogen hose are respectively provided with an oxygen plug and a hydrogen plug, and the other end of the oxygen hose and the other end of the hydrogen hose are connected to a gas mixing pipe. A nasal plug tube is arranged on the gas mixing tube, a breathing sensing device is arranged on the gas mixing tube corresponding to the position of the nasal plug tube, an electric appliance box is arranged on the oxygen hose and the hydrogen hose, and the breathing sensing device is connected with the electric appliance box. When the nose plug tube of the oxygen inhaler falls off, a falling-off signal is fed back to the oxyhydrogen equipment through the wireless communication device in the electric appliance box, and the oxyhydrogen equipment stops working, so that oxyhydrogen mixed gas is prevented from being accumulated in a sealed environment where a user is located, and potential safety hazards of the oxyhydrogen mixed gas are reduced or even eliminated; and the oxygen and hydrogen mixed treatment scheme can be popularized more quickly.
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Description

Technical Field

[0001] The utility model relates to the technical field of auxiliary breathing equipment, in particular to an oxygen inhaler and a hydrogen-oxygen system thereof. Background Art

[0002] "Hydrogen" is also known as "hydrogen molecule", which is the smallest molecule in nature. It has strong penetration and can diffuse into any organ, tissue, cell, mitochondria and cell nucleus of the human body through the skin and mucous membranes. Studies have confirmed that the hydrogen in hydrogen-rich water is easily "absorbed and utilized" by the human body. Hydrogen has an ideal selective antioxidant effect, which can selectively and efficiently remove malignant free radicals - the source of all diseases and aging, achieve internal environmental balance at the most basic cellular body fluid level, activate and stimulate the body's self-repair mechanism, and comprehensively improve health.

[0003] At present, there are two hydrogen output modes for hydrogen-oxygen machines that produce hydrogen and oxygen through electrolysis, one is pure hydrogen output, and the other is hydrogen-oxygen mixed output. The hydrogen absorption tube for pure hydrogen output is a small hole that is inserted into the nostril. Although some air will be inhaled through the gap next to it, users are prone to insufficient oxygen supply and hypoxia. Hydrogen-oxygen mixed output can solve the hypoxia problem, but the volume ratio of hydrogen to oxygen in the hydrogen-oxygen mixture is 2:1, and according to theoretical calculations, the explosion limit of hydrogen is 4%-75.6% (volume concentration), so although the hydrogen-oxygen mixing method is effective, it is not very safe. Utility Model Content

[0004] The technical problem to be solved by the utility model is to provide an oxygen absorber and a hydrogen-oxygen system thereof, which can safely achieve the mixing of oxygen and hydrogen and prevent the accumulation of oxygen mixed gas to produce potential safety hazards.

[0005] In order to solve the above technical problems, the technical solution of the utility model is as follows:

[0006] One aspect of the utility model provides an oxygen inhaler, comprising an oxygen hose and a hydrogen hose, wherein one end of the oxygen hose and the hydrogen hose is provided with an oxygen plug and a hydrogen plug respectively, and the other end of the oxygen hose and the hydrogen hose is connected to a mixing tube, a nasal congestion tube is provided on the mixing tube, a breathing sensor is provided on the mixing tube corresponding to the position of the nasal congestion tube, an electrical box is provided on the oxygen hose and the hydrogen hose, and the breathing sensor is connected to the electrical box.

[0007] Furthermore, the breathing sensing device is a piezoelectric film sensor for sensing the pressure change value on the nasal congestion tube.

[0008] Furthermore, the breathing sensing device is a temperature sensor for sensing the temperature change value of the nasal congestion tube caused by breathing.

[0009] Furthermore, the electrical box is provided with a microprocessor, a battery connected to the microprocessor, a wireless communication device, a digital display screen and an indicator light.

[0010] Furthermore, a speaker is provided in the electrical box, and the speaker is connected to the microprocessor.

[0011] Furthermore, a plurality of tube fixing seats are provided on the oxygen hose and the hydrogen hose, and the oxygen hose and the hydrogen hose are fixed by the tube fixing seats.

[0012] Furthermore, the oxygen absorber also includes a water collector, which is arranged on the oxygen hose and the hydrogen hose.

[0013] Furthermore, the breathing sensor is connected to the electrical box via a signal line, and the signal line is arranged on the oxygen hose and / or the hydrogen hose via a coating layer.

[0014] Another aspect of the utility model provides a hydrogen-oxygen system, including hydrogen-oxygen equipment and the above-mentioned oxygen absorber, the hydrogen-oxygen equipment includes a machine housing and an electrolytic hydrogen and oxygen production module arranged in the machine housing, the machine housing is also provided with an interface panel, the interface panel is provided with an oxygen interface and a hydrogen interface, the oxygen socket and the hydrogen socket of the oxygen absorber are respectively matched with the oxygen interface and the hydrogen interface.

[0015] Optionally, a power switch and an OLED display screen are also provided on the housing.

[0016] Furthermore, the electrolytic hydrogen and oxygen production module includes an electrolyzer, a pure water tank arranged on the upper side of the electrolyzer through a water tank mounting plate, a hydrogen-water separator, and an oxygen-water separator. The pure water tank is connected to the electrolyzer through a pure water pipeline. The electrolyzer is provided with an SPE membrane, a sintered electrolysis positive electrode, and a sintered electrolysis negative electrode. The SPE membrane divides the tank body into a hydrogen chamber and an oxygen chamber. The hydrogen chamber is connected to the hydrogen-water separator, and the oxygen chamber is connected to the oxygen-water separator. The oxygen-water separator is connected to the oxygen interface through an oxygen pipeline, and the hydrogen-water separator is connected to the hydrogen interface through a hydrogen pipeline.

[0017] By adopting the above technical scheme, the oxygen absorber and its hydrogen-oxygen system of the utility model can timely determine whether the nasal tube is placed in the user's nostrils through the breathing sensor device. If the breathing sensor device recognizes that the nasal tube of the oxygen absorber is detached, the detachment signal is fed back to the hydrogen-oxygen device through the wireless communication device in the electrical box, and the hydrogen-oxygen device stops working, thereby preventing the hydrogen-oxygen mixed gas from accumulating in the sealed environment where the user is located, thereby reducing or even eliminating the safety hazard of the hydrogen-oxygen mixed gas, allowing the oxygen and hydrogen mixed treatment plan to be popularized more quickly. The hydrogen-oxygen mixed gas has stronger permeability than single oxygen, increases the anti-inflammatory effect of oxygen, and has a better treatment effect on lung diseases. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.

[0019] Figure 1 This is a front view structural diagram of the first oxygen absorber of the utility model;

[0020] Figure 2 This is a front view structural diagram of the second oxygen absorber of the utility model;

[0021] Figure 3 This is a cross-sectional structural diagram of the oxygen pipe / hydrogen pipe of the utility model;

[0022] Figure 4 This is a schematic diagram of the oxygen absorber control system of the utility model;

[0023] Figure 5 This is the main structural diagram of the hydrogen and oxygen system of the utility model;

[0024] Figure 6 The three-dimensional structure of the electrolytic hydrogen production module of the utility model Figure 1 ;

[0025] Figure 7 The three-dimensional structure of the electrolytic hydrogen production module of the utility model Figure 1 ;

[0026] In the figure, 10-oxygen inhaler, 11-oxygen hose, 12-hydrogen hose, 13-mixing tube, 14-nasal congestion tube, 15-water collector, 16-oxygen plug, 17-hydrogen plug, 18-electrical box, 19-digital display screen, 110-indicator light, 111-coating layer, 112-signal line, 113-tube fixing seat, 114-piezoelectric film sensor, 115-temperature sensor, 116-microprocessor, 117-battery, 118-wireless communication device, 119-speaker;

[0027] 21- housing, 22- power switch, 23- interface panel, 24- oxygen interface, 25- hydrogen interface, 26- pure water tank, 27- water tank mounting plate, 28- electrolyzer, 29- hydrogen-water separator, 210- oxygen-water separator, 211- pure water pipeline, 212- oxygen pipeline, 213- hydrogen pipeline, 214- OLED display. DETAILED DESCRIPTION

[0028] The specific implementation methods of the present invention are further described below in conjunction with the accompanying drawings. It should be noted that the description of these implementation methods is used to help understand the present invention, but does not constitute a limitation of the present invention. In addition, the technical features involved in each implementation method of the present invention described below can be combined with each other as long as they do not conflict with each other.

[0029] Example 1

[0030] like Figure 1-4 As shown, an embodiment of the utility model provides an oxygen inhaler 10, including an oxygen hose 11 and a hydrogen hose 12, wherein one end of the oxygen hose 11 and the hydrogen hose 12 are respectively provided with an oxygen plug 16 and a hydrogen plug 17, and the other ends of the oxygen hose 11 and the hydrogen hose 12 are connected to a mixing tube 13, a nasal congestion tube 14 is provided on the mixing tube 13, a breathing sensor is provided on the mixing tube 13 corresponding to the position of the nasal congestion tube 14, an electrical box 18 is provided on the oxygen hose 11 and the hydrogen hose 12, and the breathing sensor is connected to the electrical box 18.

[0031] Specifically, Figure 1As shown, the breathing sensing device is a piezoelectric film sensor 114, which is used to sense the pressure change value on the nasal tube 14. When the nasal tube 14 is set at the user's nostril position, the nasal tube 14 and the user's nostril position are in contact with each other, so there is a squeezing force between them. When the piezoelectric film sensor 114 is in the squeezing contact position, it can generate a piezoelectric sensing signal, so that it can be determined that the nasal tube 14 is worn normally. When this piezoelectric sensing signal disappears, it means that the nasal tube 14 is out of the nostril position. A wireless communication device is set in the electrical box, which can report this signal to the hydrogen and oxygen equipment. When the duration exceeds the preset value, the hydrogen and oxygen equipment automatically stops working.

[0032] Specifically, Figure 2 As shown, the breathing sensing device is a temperature sensor 115, which is used to sense the temperature change value of the nasal tube 14 caused by breathing. When the nasal tube 14 is set at the user's nostril position, the gas exhaled by the user continuously acts on the nasal tube 14. As the user breathes, the temperature change value obtained by the temperature sensor 115 changes with the breathing pattern, so that it can be determined that the nasal tube 14 is worn normally. When this temperature change signal disappears, it means that the nasal tube 14 is out of the nostril position. A wireless communication device is set in the electrical box, which can report this signal to the hydrogen and oxygen equipment. When the duration exceeds the preset value, the hydrogen and oxygen equipment automatically stops working.

[0033] like Figure 4 As shown, the electrical box 18 is provided with a microprocessor 116, a battery 117 connected to the microprocessor 116, a wireless communication device 118, a digital display screen 19 and an indicator light 110. Specifically, the wireless communication device 118 is one or more of a Bluetooth communication module, a wireless RF communication module, and a Wi-Fi communication module. Preferably, it is a Bluetooth 4.0 communication module to achieve data communication with hydrogen and oxygen equipment and mobile terminals, and can be connected to the cloud server through the mobile terminal or directly connected to the cloud server.

[0034] Optionally, a speaker 119 is further provided in the electrical box 18, and the speaker 119 is connected to the microprocessor 116. Through the speaker 119, when the nasal congestion tube 14 falls off, a sound prompt is issued.

[0035] like Figure 1 , 2 As shown, a plurality of tube fixing seats 113 are provided on the oxygen hose 11 and the hydrogen hose 12 , and the oxygen hose 11 and the hydrogen hose 12 are fixed by the tube fixing seats 113 .

[0036] Optionally, the oxygen absorber 10 further includes a water collector 15 , and the water collector 15 is disposed on the oxygen hose 11 and the hydrogen hose 12 .

[0037] like Figure 3 As shown, the breathing sensor is connected to the electrical box 18 via a signal line 112 , and the signal line 112 is disposed on the oxygen hose 11 and / or the hydrogen hose 12 via a coating layer 111 .

[0038] Example 2

[0039] like Figure 5-7 As shown, an embodiment of the utility model provides a hydrogen-oxygen system, including a hydrogen-oxygen device 20 and the above-mentioned oxygen absorber 10, the hydrogen-oxygen device 20 includes a machine housing 21 and an electrolytic hydrogen and oxygen production module arranged in the machine housing 21, the machine housing 21 is also provided with an interface panel 23, the interface panel 23 is provided with an oxygen interface 24 and a hydrogen interface 25, the oxygen socket 16 and the hydrogen socket 17 of the oxygen absorber 10 are respectively matched with the oxygen interface and the hydrogen interface.

[0040] Optionally, a power switch 22 and an OLED display screen 214 are also provided on the housing 21 .

[0041] like Figure 6 , 7 As shown, the electrolytic hydrogen and oxygen production module includes an electrolytic cell 28, a pure water tank 26 arranged on the upper side of the electrolytic cell 28 through a water tank mounting plate 27, a hydrogen-water separator 29, and an oxygen-water separator 210. The pure water tank 26 is connected to the electrolytic cell 28 through a pure water pipeline 211. The electrolytic cell 28 is provided with an SPE membrane, a sintered electrolytic positive electrode, and a sintered electrolytic negative electrode. The SPE membrane divides the tank body into a hydrogen chamber and an oxygen chamber. The hydrogen chamber is connected to the hydrogen-water separator 29, and the oxygen chamber is connected to the oxygen-water separator 210. The oxygen-water separator 210 is connected to the oxygen interface 24 through an oxygen pipeline 212, and the hydrogen-water separator 29 is connected to the hydrogen interface 25 through a hydrogen pipeline 213.

[0042] The oxygen absorber and its hydrogen-oxygen system of the utility model can timely determine whether the nasal tube is placed in the user's nostrils through the breathing sensor device. If the breathing sensor device recognizes that the nasal tube of the oxygen absorber is detached, the detachment signal is fed back to the hydrogen-oxygen device through the wireless communication device in the electrical box, and the hydrogen-oxygen device stops working, thereby preventing the hydrogen-oxygen mixed gas from accumulating in the sealed environment where the user is located, thereby reducing or even eliminating the safety hazard of the hydrogen-oxygen mixed gas, allowing the oxygen and hydrogen mixed treatment plan to be popularized more quickly. The hydrogen-oxygen mixed gas has stronger permeability than single oxygen, increases the anti-inflammatory effect of oxygen, and has a better therapeutic effect on lung diseases.

[0043] The above is a detailed description of the embodiments of the present invention in conjunction with the accompanying drawings, but the present invention is not limited to the described embodiments. For those skilled in the art, various changes, modifications, substitutions and variations of these embodiments are made without departing from the principles and spirit of the present invention, and still fall within the scope of protection of the present invention.

Claims

1. An oxygen absorber, characterized in that: It comprises an oxygen hose and a hydrogen hose, wherein one end of the oxygen hose and the hydrogen hose is provided with an oxygen plug and a hydrogen plug respectively, and the other end of the oxygen hose and the hydrogen hose is connected to a gas mixing pipe, a nasal congestion tube is provided on the gas mixing pipe, a breathing sensor is provided on the gas mixing pipe corresponding to the position of the nasal congestion tube, an electrical box is provided on the oxygen hose and the hydrogen hose, and the breathing sensor is connected to the electrical box.

2. The oxygen absorber according to claim 1, characterized in that: The respiratory sensing device is a piezoelectric film sensor, which is used to sense the pressure change value on the nasal congestion tube.

3. The oxygen absorber according to claim 1, characterized in that: The breathing sensing device is a temperature sensor, which is used to sense the temperature change value of the nasal congestion tube caused by breathing.

4. The oxygen absorber according to claim 1, characterized in that: The electrical box is provided with a microprocessor, a battery connected to the microprocessor, a wireless communication device, a digital display screen and an indicator light.

5. The oxygen absorber according to claim 4, characterized in that: A speaker is also arranged in the electrical box, and the speaker is connected to the microprocessor.

6. The oxygen absorber according to claim 1, characterized in that: A plurality of tube fixing seats are arranged on the oxygen hose and the hydrogen hose, and the oxygen hose and the hydrogen hose are fixed by the tube fixing seats.

7. The oxygen absorber according to claim 1, characterized in that: The oxygen absorber further comprises a water collector, which is arranged on the oxygen hose and the hydrogen hose.

8. The oxygen absorber according to claim 1, characterized in that: The breathing induction device is connected to the electrical box via a signal line, and the signal line is arranged on the oxygen hose and / or the hydrogen hose via a coating layer.

9. A hydrogen-oxygen system, characterized in that: It comprises hydrogen-oxygen equipment and an oxygen absorber as claimed in any one of claims 1 to 8, wherein the hydrogen-oxygen equipment comprises a machine housing and an electrolytic hydrogen and oxygen production module arranged in the machine housing, the machine housing is also provided with an interface panel, the interface panel is provided with an oxygen interface and a hydrogen interface, and the oxygen socket and the hydrogen socket of the oxygen absorber cooperate with the oxygen interface and the hydrogen interface respectively.

10. The hydrogen-oxygen system according to claim 9, characterized in that: The electrolytic hydrogen and oxygen production module includes an electrolytic cell, a pure water tank arranged on the upper side of the electrolytic cell through a water tank mounting plate, a hydrogen-water separator, and an oxygen-water separator. The pure water tank is connected to the electrolytic cell through a pure water pipeline. The electrolytic cell is provided with an SPE membrane, a sintered electrolysis positive electrode, and a sintered electrolysis negative electrode. The SPE membrane divides the cell body into a hydrogen chamber and an oxygen chamber. The hydrogen chamber is connected to the hydrogen-water separator, and the oxygen chamber is connected to the oxygen-water separator. The oxygen-water separator is connected to the oxygen interface through an oxygen pipeline, and the hydrogen-water separator is connected to the hydrogen interface through a hydrogen pipeline.