High-oxygen liquid cup

By miniaturizing the core components of the hyperoxia liquid therapy device and integrating them into a water cup, and using electrochemical oxygen generation technology and catalyst conversion of ozone, the problems of large size and high cost of medical hyperoxia liquid therapy devices have been solved, realizing the preparation and safe output of portable hyperoxia liquid.

CN224062551UActive Publication Date: 2026-03-31SHENZHEN OZONE SPRING TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-27
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing medical hyperbaric fluid therapy devices are bulky, complex in structure, and expensive, limiting their application.

Method used

The core components of the hyperoxia liquid therapy device—the hyperoxia liquid generator, the gas-liquid mixing device, and the ozone catalytic device—are miniaturized and integrated into a water cup. Powered by a rechargeable battery, and combined with electrochemical oxygen generation technology, gas-liquid separation and catalytic conversion of undissolved ozone are achieved through porous titanium sheets and a waterproof and breathable membrane.

Benefits of technology

It enables the preparation of portable high-oxygen liquid, reduces equipment size and cost, facilitates home or personal use, and ensures safe oxygen output and product safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a high-oxygen liquid cup, which relates to the technical field of high-oxygen liquid cups, and comprises a cup, the top of the cup is movably provided with an ozone catalysis component through threads, the ozone catalysis component comprises a cup cover shell which is arranged at the top of the cup through threads, the top wall of the cup cover shell is provided with a top cover, and the inner side of the top cover is provided with an oxygen vent hole. The catalyst and the waterproof breathable film are installed, the inner side of the cup cover shell is fixed through the porous titanium fixing block, the porous titanium fixing block fixes the first porous titanium sheet on the inner side, stability of the first porous titanium sheet is guaranteed, the cup cover shell fixes the catalyst on the inner side, stability of the catalyst is guaranteed, and undissolved O enters the catalyst; the manganese-copper catalyst arranged in the catalyst converts undissolved O into oxygen to be discharged, the oxygen is discharged through the oxygen vent holes, environmental pollution is avoided, the waterproof breathable film is used for preventing water output and facilitating gas passing, and the first porous titanium sheet is used for intercepting water and facilitating gas passing.
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Description

Technical Field

[0001] This utility model relates to the field of high oxygen liquid preparation technology, specifically a high oxygen liquid water cup. Background Technology

[0002] High-oxygen liquid, high-dissolved oxygen water, and oxygen-enriched water all refer to water with a certain level of dissolved oxygen content. Its characteristics include an oxygen partial pressure of 80 kPa, and its features are: (1) high oxygen partial pressure, which increases the PO2 in the base liquid from 21 kPa to 80-100 kPa after oxygenation; (2) high concentration of dissolved oxygen, with 17 ml of physically dissolved oxygen in 500 ml of oxygen-enriched water, which is 5-7 times that of normal medical liquids; (3) large blood oxygen diffusion radius, twice that of normal arterial blood, approximately the same as the oxygen diffusion radius of arterial blood in a hyperbaric oxygen chamber at 2 atmospheres, making it easier to enter ischemic and hypoxic tissues; (4) containing a certain concentration of active oxygen (O3), whose solubility in liquid is about 13 times higher than that of oxygen molecules, and O3 can be converted into O2, increasing the oxygen content in the liquid. (See: Discussion on the Mechanism of Oxygen-Enriched Water's Effect on Hypoxia Tolerance and Anti-Fatigue in High-Altitude Humans. Cui Jianhua. Clinical Military Medicine Journal, August 2007, Vol. 35, No. 4)

[0003] The research team led by Director Xu Lixian of the Department of Anesthesiology at the Affiliated Stomatological Hospital of the Fourth Military Medical University, which won the second prize of the National Science and Technology Progress Award in 2009 and the first prize of the Military Science and Technology Progress Award in 2006, with the award titled "New Technologies and Applications for the Prevention and Treatment of Hypoxia in Special Environments," created a new oxygen supply route by using hyperoxygenated liquid, no longer relying solely on nasal oxygen inhalation.

[0004] Hyperoxygenated solutions can be administered intravenously, orally, or through skin absorption. They have been widely adopted in hospitals and high-altitude military units with good results. (See Xu Lixian's hyperoxygenated solution patents: ZL 02139336.2 CN1164251C - A method for preparing a water bath solution containing hyperoxygen; ZL02139337.0 CN1185966C - A method for preparing a health beverage containing hyperoxygen)

[0005] The effective shelf life of hyperoxia solution is 1-3 months, after which it reverts to ordinary water. The shelf life is affected by environmental factors. Therefore, hospitals typically use "hyperoxia medical fluid therapy devices" to prepare the solution on-site to ensure its effectiveness. However, these devices are bulky, expensive, and require a medical oxygen source, thus limiting their application.

[0006] Our team has focused on the research and development of medical hyperoxia liquid for many years, and in 2021 obtained the National Class II Medical Device Registration Certificate for "Medical Ozone Water Therapy Device" (Guangdong Medical Device Registration Certificate No. 20212091354). Therefore, we are well aware of the advantages and disadvantages of dedicated medical "hyperoxia medical liquid therapy devices". To expand the application scope of this project, our team has upgraded and improved the "hyperoxia medical liquid therapy device" project, concentrating, simplifying, and reducing the cost of core components: hyperoxia liquid generator, gas-liquid mixing device, and ozone catalysis device. This allows it to be made into a water cup for home or personal use, providing health benefits for high-altitude personnel, travelers to Tibet, athletes, and those with lung failure (such as COPD patients). Utility Model Content

[0007] The purpose of this utility model is to provide a high-oxygen liquid water cup to solve the technical problems of the large size, complex structure and high cost of the medical "high-oxygen medical liquid therapy device" mentioned in the background art.

[0008] To achieve the above objectives, this utility model provides the following technical solution: a high-oxygen liquid water cup, comprising: a water cup, wherein an ozone catalytic component is movably mounted on the top of the water cup via threads; the ozone catalytic component includes a cup lid shell mounted on the top of the water cup via threads; a top cover is provided on the top wall of the cup lid shell; an oxygen vent is provided on the inner side of the top cover; a first waterproof and breathable membrane is installed at the bottom of the top cover; a sealing ring is installed on the top inner side of the cup lid shell, the sealing ring abuts against the top of the water cup; a second waterproof and breathable membrane is installed on the inner side of the cup lid shell; a first porous titanium sheet is installed above the second waterproof and breathable membrane; a porous titanium fixing block is installed on the outer side of the first porous titanium sheet; the porous titanium fixing block is installed on the inner side of the cup lid shell; a catalyst is installed above the porous titanium fixing block; and the catalyst is installed on the inner side of the cup lid shell.

[0009] Preferably, the bottom of the water cup is threadedly fitted with a gas-liquid mixing assembly. The gas-liquid mixing assembly includes a gas-liquid mixing shell threadedly fitted to the bottom of the water cup. A first sealing gasket is fitted on the inner bottom wall of the gas-liquid mixing shell, a second sealing gasket is fitted on the inner top wall of the gas-liquid mixing shell, a second porous titanium sheet is fitted on the top wall of the gas-liquid mixing shell, a third waterproof and breathable membrane is fitted on the bottom of the second porous titanium sheet, and the third waterproof and breathable membrane is fitted on the top wall of the gas-liquid mixing shell.

[0010] Preferably, an ozone generator is threadedly installed on the inner side of the gas-liquid mixing shell, an anode water tank is installed on the top of the ozone generator, and a base shell is installed on the outer side of the ozone generator.

[0011] Preferably, a cathode water tank is installed on the inner bottom wall of the base shell, and a storage battery is installed on the top of the cathode water tank.

[0012] Preferably, a plug is installed through the bottom wall of the cathode water tank.

[0013] Preferably, a charging port is installed on one side of the base housing.

[0014] Preferably, a display screen is mounted on the other side of the base housing.

[0015] Compared with the prior art, the beneficial effects of this utility model are:

[0016] 1. This invention reduces the size of the medical hyperoxygenated liquid production device to the size of a water cup (mainly through the coordinated structure of a miniaturized hyperoxygenated liquid generator, gas-liquid mixing device, and ozone catalysis device), making it easy to carry and use. With a built-in rechargeable battery, a single charge can meet the demand for producing hyperoxygenated liquid for 1-2 days. It uses electrochemical oxygen generation (unlike the photochemical oxygen production method used by Xu Lixian's team), physically mixes dissolved oxygen, and integrates oxygen generation and dissolution into the water cup; it can decompose pure water into hydrogen / oxygen atoms, with the hydrogen being released and the oxygen atoms output as a combination of -O, O2, and O3 gases.

[0017] 2. This utility model incorporates a catalyst and a waterproof and breathable membrane. The inner side of the cup lid shell is fixed by a porous titanium fixing block, which secures the inner first porous titanium sheet, ensuring its stability. The cup lid shell also secures the inner catalyst, ensuring its stability. Undissolved O3 enters the catalyst's interior, where the built-in manganese-copper catalyst converts the undissolved O3 into oxygen, which is then released through oxygen vents, preventing environmental pollution. The waterproof and breathable membrane prevents water output while facilitating gas passage, and the first porous titanium sheet intercepts water while allowing gas to pass through.

[0018] 3. This utility model uses a limited seat to fix the second porous titanium sheet and the third waterproof and breathable membrane on the inner side of the gas-liquid mixing shell, ensuring the stability of the second porous titanium sheet and the third waterproof and breathable membrane. The second porous titanium sheet and the third waterproof and breathable membrane work together to ensure the airtightness of the water cup. The second porous titanium sheet and the third waterproof and breathable membrane use μm-level micropores for water and gas separation. The structure of the micro gas-liquid mixing device is protected by injection molding and ultrasonic welding of the second porous titanium sheet and the third waterproof and breathable membrane, avoiding the impact on product safety and functionality due to problems such as excessive metal ions. Attached Figure Description

[0019] Figure 1 This is a front structural diagram of the present invention;

[0020] Figure 2 This is a cross-sectional structural diagram of the present invention;

[0021] Figure 3 This is a schematic diagram of the base shell structure of this utility model;

[0022] Figure 4 This is a schematic diagram of the top cover structure of this utility model.

[0023] In the diagram: 1. Water cup; 2. Top cover; 3. Oxygen vent; 4. First waterproof and breathable membrane; 5. Cup lid shell; 6. Catalyst; 7. Sealing ring; 8. Porous titanium fixing block; 9. First porous titanium sheet; 10. Second waterproof and breathable membrane; 11. Gas-liquid mixing shell; 12. First sealing gasket; 13. Second sealing gasket; 14. Second porous titanium sheet; 15. Third waterproof and breathable membrane; 16. Anode water tank; 17. Base shell; 18. Ozone generator; 19. Battery; 20. Cathode water tank; 21. Blockage; 22. Display screen; 23. Charging port. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] In the description of this utility model, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0026] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "equipped with," "connected," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0027] Definitions: Extraction of medical oxygen (referring to oxygen content ≥99.5%), quenching of polymorphic oxygen (referring to a mixture of –O, O2, and O3 oxygen), extraction of dissolved oxygen (referring to a solution containing –O, O2, O3, and -OH), and quenching of escaped oxygen (referring to a mixture of –O, O2, O3, and -OH that is not dissolved in the liquid or has escaped from the liquid).

[0028] Please see Figure 1 , Figure 2 , Figure 3 and Figure 4 A high-oxygen liquid water cup, characterized in that it comprises: a water cup 1, wherein an ozone catalytic component is movably installed on the top of the water cup 1 by means of threads, the ozone catalytic component includes a cup lid shell 5 installed on the top of the water cup 1 by means of threads, a top cover 2 is provided on the top wall of the cup lid shell 5, an oxygen vent 3 is provided on the inner side of the top cover 2, a first waterproof and breathable membrane 4 is installed on the bottom of the top cover 2, a sealing ring 7 is installed on the top of the inner side of the cup lid shell 5, the sealing ring 7 abuts against the top of the water cup 1, a second waterproof and breathable membrane 10 is installed on the inner side of the cup lid shell 5, a first porous titanium sheet 9 is installed on the top of the second waterproof and breathable membrane 10, a porous titanium fixing block 8 is installed on the outer side of the first porous titanium sheet 9, the porous titanium fixing block 8 is installed on the inner side of the cup lid shell 5, a catalyst 6 is installed on the top of the porous titanium fixing block 8, and the catalyst 6 is installed on the inner side of the cup lid shell 5;

[0029] The inner ozone catalytic component of the water cup 1 is fixed to ensure stable operation. The outer shell of the cup lid 5 is threaded onto the top of the water cup 1 for easy installation. The outer shell of the cup lid 5 is fixed to the top cover 2 to ensure its stability. An oxygen vent 3 is opened on the inner side of the top cover 2 to facilitate air circulation. The top cover 2 is fixed to the bottom first waterproof and breathable membrane 4. The outer shell of the cup lid 5 is fixed to the inner second waterproof and breathable membrane 10. The inner side of the outer shell of the cup lid 5 is fixed by a porous titanium fixing block 8, which fixes the inner first porous titanium sheet 9 to ensure its stability. The outer shell of the cup lid 5 is fixed to the inner catalyst 6 to ensure its stability. Undissolved O3 enters the interior of the catalyst 6. The manganese-copper catalyst inside the catalyst 6 converts the undissolved O3 into oxygen and releases it through the oxygen vent 3. The waterproof and breathable membrane 10 is used to prevent water output and facilitate gas passage. The first porous titanium sheet 9 is used to intercept water and facilitate gas passage.

[0030] The bottom of the water cup 1 is threaded with a gas-liquid mixing assembly. The gas-liquid mixing assembly includes a gas-liquid mixing shell 11 threadedly installed at the bottom of the water cup 1. A first sealing gasket 12 is installed on the inner bottom wall of the gas-liquid mixing shell 11. A second sealing gasket 13 is installed on the inner top wall of the gas-liquid mixing shell 11. A second porous titanium sheet 14 is installed on the top wall of the gas-liquid mixing shell 11. A third waterproof and breathable membrane 15 is installed at the bottom of the second porous titanium sheet 14. The third waterproof and breathable membrane 15 is installed on the top wall of the gas-liquid mixing shell 11.

[0031] The bottom of the water cup 1 is movably connected to the gas-liquid mixing component via threads, facilitating user assembly of the water cup 1 and the gas-liquid mixing component. The first sealing gasket 12 is installed on the inner bottom wall of the gas-liquid mixing shell 11 to ensure its stability. The top of the first sealing gasket 12 rests against the bottom of the water cup 1 to ensure the sealing between the water cup 1 and the gas-liquid mixing component. The gas-liquid mixing shell 11 fixes the inner second porous titanium sheet 14 and the third waterproof and breathable membrane 15 to ensure their stability. The second porous titanium sheet 14 and the third waterproof and breathable membrane 15 work together to provide breathability and waterproofing, ensuring the sealing of the water cup.

[0032] An ozone generator 18 is threadedly installed on the inner side of the gas-liquid mixing shell 11. An anode water tank 16 is installed on the top of the ozone generator 18. A base shell 17 is installed on the outer side of the ozone generator 18. A cathode water tank 20 is installed on the inner bottom wall of the base shell 17. A storage battery 19 is installed on the top of the cathode water tank 20. A plug 21 is installed through the bottom wall of the cathode water tank 20. A charging port 23 is installed on one side of the base shell 17. A display screen 22 is installed on the other side of the base shell 17.

[0033] The gas-liquid mixing housing 11 fixes the inner ozone generator 18 to ensure stable operation of the ozone generator 18. The base housing 17 also fixes the inner ozone generator 18 to ensure stable operation of the ozone generator 18. The battery 19 is located inside the base housing 17 and provides power to the water cup to ensure normal operation of the water cup. When the ozone generator 18 is powered on, the cathode water tank 20 and the cathode water tank 20 are powered on, converting water into hydrogen and oxygen. Hydrogen is discharged from the internal pipe of the ozone generator 18, and oxygen passes upward through the gas-liquid mixing component and enters the interior of the water cup 1. The oxygen dissolves in the water, and excess oxygen passes upward through the first porous titanium sheet 9 and the waterproof and breathable membrane 10.

[0034] Working principle: When the ozone generator 18 is powered on, the cathode water tank 20 is energized, decomposing pure water into hydrogen / oxygen atoms. The oxygen atoms are output in the form of a combination of -O, O2, and O3 gases. Hydrogen is discharged from the internal pipe of the ozone generator 18, and oxygen passes upward through the gas-liquid mixing component and enters the water cup 1. The oxygen dissolves in the water, and excess oxygen passes upward through the first porous titanium sheet 9 and the waterproof and breathable membrane 10. Undissolved O3 enters the interior of the catalyst 6. The manganese-copper catalyst inside the catalyst 6 converts the undissolved O3 into oxygen and releases it through the oxygen vent 3. The waterproof and breathable membrane 10 is used to prevent water output and facilitate gas passage. The first porous titanium sheet 9 is used to intercept water and facilitate gas passage.

[0035] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A high oxygen liquid water cup characterized by, The utility model provides a water cup with ozone catalysis component and gas-liquid mixing component, which comprises a water cup (1), a cup cover shell (5) is screw-mounted on the top of the water cup (1), a top cover (2) is arranged on the top wall of the cup cover shell (5), an oxygen gas permeable hole (3) is arranged on the inner side of the top cover (2), a first waterproof gas permeable film (4) is arranged on the bottom of the top cover (2), a sealing ring (7) is arranged on the inner side top of the cup cover shell (5), the sealing ring (7) is abutted against the upper side of the water cup (1), a second waterproof gas permeable film (10) is arranged on the inner side of the cup cover shell (5), a first porous titanium sheet (9) is arranged on the upper side of the second waterproof gas permeable film (10), a porous titanium fixing block (8) is arranged on the outer side of the first porous titanium sheet (9), the porous titanium fixing block (8) is arranged on the inner side of the cup cover shell (5), a catalyst (6) is arranged on the upper side of the porous titanium fixing block (8), and the catalyst (6) is arranged on the inner side of the cup cover shell (5).

2. The hyperoxic liquid cup of claim 1, wherein: The bottom of the water cup (1) is screw-mounted with a gas-liquid mixing component, the gas-liquid mixing component comprises a gas-liquid mixing shell (11) screw-mounted on the bottom end of the water cup (1), a first sealing gasket (12) is arranged on the inner side bottom wall of the gas-liquid mixing shell (11), a second sealing gasket (13) is arranged on the inner side top wall of the gas-liquid mixing shell (11), a second porous titanium sheet (14) is arranged on the top wall of the gas-liquid mixing shell (11), a third waterproof gas permeable film (15) is arranged on the bottom of the second porous titanium sheet (14), and the third waterproof gas permeable film (15) is arranged on the top wall of the gas-liquid mixing shell (11).

3. The hyperoxic liquid cup of claim 2, wherein: The inner side of the gas-liquid mixing shell (11) is screw-mounted with an ozone generator (18), the top of the ozone generator (18) is provided with an anode water tank (16), and the outer side of the ozone generator (18) is provided with a base shell (17).

4. The hyperoxic liquid cup of claim 3, wherein: The inner side bottom wall of the base shell (17) is provided with a cathode water tank (20), and the top of the cathode water tank (20) is provided with a battery (19).

5. The hyperoxic liquid cup of claim 4, wherein: The bottom wall of the cathode water tank (20) is provided with a plug (21).

6. The hyperoxic liquid cup of claim 3, wherein: One side of the base shell (17) is provided with a charging port (23).

7. The hyperoxic liquid cup of claim 3, wherein: The other side of the base shell (17) is provided with a display screen (22).