Hydrogen-rich water device capable of adjusting hydrogen water mixing

By employing a dual-channel design for both water electrolysis and drinking water, along with the reciprocating motion of a high-pressure hydrogen dissolving rod, the existing hydrogen-rich water devices have been able to output a fixed water quality and achieve slow hydrogen dissolution rates. This has enabled the production of diverse water qualities and efficient hydrogen dissolution, thereby enhancing the practicality and quality of hydrogen-rich water.

CN224313308UActive Publication Date: 2026-06-02HEFEI CHANGHE ENERGY TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEFEI CHANGHE ENERGY TECH CO LTD
Filing Date
2025-05-15
Publication Date
2026-06-02

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  • Figure CN224313308U_ABST
    Figure CN224313308U_ABST
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Abstract

This utility model discloses a hydrogen-rich water device with adjustable hydrogen-water mixing, including a pure water tank, a pure water circulation pump, an electrolyzer, a gas-water separator, and a buffer tank. The electrolyzer and gas-water separator are equipped with an anode, a cathode, and a proton exchange membrane. A motor mounted on the buffer tank drives a high-pressure hydrogen dissolving rod to move left and right. Components such as the insertion plate and assembly plate have specific connections and are equipped with sealing sleeves to prevent interference. This device has dual channels for electrolyzing water and drinking water, allowing the human body to drink different water qualities through a series of processes, improving its practicality. Furthermore, the reciprocating motion of the high-pressure hydrogen dissolving rod driven by the motor increases the contact area between hydrogen and water, forming a flow path and vortex, improving the hydrogen dissolution speed and efficiency, resulting in a more uniform hydrogen distribution, reducing concentration gradients, and improving the quality of the hydrogen-rich water and the overall quality of the device.
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Description

Technical Field

[0001] This utility model relates to the field of drinking water equipment technology, specifically to a hydrogen-rich water device with adjustable hydrogen-water mixing. Background Technology

[0002] As people become increasingly health-conscious, they are placing higher demands on the quality and functionality of drinking water. Hydrogen-rich water, due to its potential health benefits such as antioxidant and anti-inflammatory effects, is gradually gaining attention. Studies have shown that hydrogen has selective antioxidant properties, capable of neutralizing harmful free radicals in the body, which gives hydrogen-rich water significant application potential in the field of health and wellness.

[0003] Traditional hydrogen-rich water devices can only output a fixed type of water, which cannot meet the human body's needs for different water qualities. Furthermore, the method of dissolving hydrogen into water in traditional hydrogen-rich water preparation devices is relatively simple, and the method of dissolving hydrogen into water by directly inserting a high-pressure hydrogen dissolving rod into the water results in a slow dissolution rate of hydrogen in the water, which affects the quality and effect of hydrogen-rich water and cannot meet the working requirements of drinking water equipment. Therefore, a hydrogen-rich water device with adjustable hydrogen-water mixing is proposed. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this invention provides a hydrogen-rich water device with adjustable hydrogen-water mixing, which solves the technical problem that can only output a fixed type of water and that directly inserting a high-pressure hydrogen dissolving rod into the water results in a slow dissolution rate of hydrogen in the water, failing to meet the human body's needs for different water qualities.

[0006] (II) Technical Solution

[0007] To achieve the above objectives, this utility model provides the following technical solution: a hydrogen-rich water device with adjustable hydrogen-water mixing, comprising:

[0008] A pure water tank, the outlet of which is connected to a pure water circulation pump via a pipe, the outlet of which is connected to an electrolytic cell via a pipe, and the outlet of which is equipped with a gas-liquid separator.

[0009] A buffer water tank is connected to the outlet of the air-water separator via a pipe. A water pump is connected to the inlet of the buffer water tank via a pipe. An installation platform is welded to the lower left side of the buffer water tank, and a T-shaped platform is installed on the top left side of the installation platform.

[0010] The assembly kit is installed on the top left and right sides of the T-shaped platform. Each assembly kit has an insert plate inserted inside. The front center of each insert plate is connected to an assembly plate. The upper right side of the assembly plate is fitted with a pipe clamp.

[0011] A high-pressure hydrogen dissolving rod is inserted inside the pipe clamp. A motor is installed at the top center of the mounting platform. A drive shaft is coaxially connected to the top of the motor rotor. A plug is installed on the top outer side of the drive shaft through a bearing. A drive groove is opened inside the assembly plate, and the plug is inserted into the drive groove.

[0012] Preferably, both the electrolytic cell and the gas-water separator are equipped with an anode and a cathode, and a proton exchange membrane is installed between the anode and the cathode inside the electrolytic cell and the gas-water separator to facilitate separation.

[0013] Preferably, the length of the insert plate is greater than the length of the T-shaped platform, and the top of each high-pressure hydrogen dissolving rod is connected to a flexible tube, the top of which penetrates through the corresponding position at the top of the buffer water tank.

[0014] Preferably, the buffer tank has through slots on the left side corresponding to the mounting plate and on the top corresponding to the hose, and the mounting plate and hose pass through the through slots at the corresponding positions to avoid interference.

[0015] Preferably, sealing sleeves are fitted on the outside of the hose and the mounting plate at positions corresponding to the through groove, and the outer side of the sealing sleeves is connected to the tank panel of the buffer water tank.

[0016] Preferably, the rear of the mounting plate and the insert plate on the left side are both equipped with connecting pins, and springs are sleeved on the outside of the connecting pins.

[0017] (III) Beneficial Effects

[0018] Compared with the prior art, this utility model provides a hydrogen-rich water device with adjustable hydrogen-water mixing, which has the following beneficial effects:

[0019] 1. This adjustable hydrogen-water mixing hydrogen-rich water device employs a dual-channel system of electrolyzed water and drinking water. During normal use, a small amount of pure water sufficient for electrolysis is added to the pure water tank. Then, the switch is turned on, and the pure water circulation pump starts running. The water in the pure water tank enters the electrolysis cell to participate in electrolysis. The generated oxygen and water then circulate back into the pure water tank. Oxygen is discharged from the oxygen vent at the top of the pure water tank, while hydrogen enters the gas-water separator, where hydrogen and water are separated. Simultaneously, the water pump automatically draws water into the buffer tank, which is equipped with a high-pressure hydrogen dissolving rod. Under the action of the high-pressure hydrogen dissolving rod, hydrogen enters the water, mixes with the water in the buffer tank, and is then discharged. In this way, the human body can drink various types of water, enhancing the practicality of the hydrogen-rich water device.

[0020] 2. This adjustable hydrogen-water mixing hydrogen-rich water device uses a motor to drive the rotation of the transmission shaft and insert block, which in turn causes the assembly plate and insert plate to reciprocate left and right. This, in turn, causes the high-pressure hydrogen dissolving rod to move left and right, resulting in a continuous change and increase in the contact area between hydrogen and water. During the oscillation, hydrogen forms different flow paths and vortices in the water, allowing for more complete contact between hydrogen and water, thereby improving the dissolution rate and efficiency of hydrogen in water. Simultaneously, the repeated oscillation intensifies the relative motion between hydrogen and water, enhancing the gas-liquid mass transfer effect. This helps hydrogen diffuse into the water more quickly, increasing the amount and rate of hydrogen dissolution. Furthermore, the reciprocating oscillation of the high-pressure hydrogen dissolving rod makes the hydrogen distribution in the water more uniform, reducing the hydrogen concentration gradient, which helps improve the quality and stability of the hydrogen-rich water, making its performance more consistent and improving the overall quality of the hydrogen-rich water device. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the structure of this utility model;

[0022] Figure 2 This is a schematic diagram of the buffer water tank structure of this utility model;

[0023] Figure 3 This is a schematic diagram of the high-pressure hydrogen dissolving rod structure of this utility model;

[0024] Figure 4 This is a schematic diagram of the assembly plate and insert plate structure of this utility model;

[0025] Figure 5 This is a schematic diagram of the motor and transmission shaft structure of this utility model.

[0026] In the diagram: 1. Pure water tank; 2. Pure water circulation pump; 3. Electrolytic cell; 4. Gas-water separator; 5. Buffer tank; 6. Inlet pump; 7. Mounting platform; 8. T-shaped platform; 9. Assembly set; 10. Insert plate; 11. Assembly plate; 12. Pipe clamp; 13. High-pressure hydrogen dissolving rod; 14. Hoses; 15. Through groove; 16. Sealing sleeve; 17. Transmission groove; 18. Motor; 19. Transmission shaft; 20. Insert block; 21. Connecting pin; 22. Spring. Detailed Implementation

[0027] 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.

[0028] This utility model provides a technical solution: a hydrogen-rich water device with adjustable hydrogen-water mixing, comprising a pure water tank 1, a pure water circulation pump 2, an electrolytic cell 3, a gas-water separator 4, a buffer water tank 5, an inlet pump 6, a mounting platform 7, a T-shaped platform 8, an assembly assembly 9, a plug plate 10, an assembly plate 11, a pipe clamp 12, a high-pressure hydrogen dissolving rod 13, a flexible hose 14, a through groove 15, a sealing sleeve 16, a transmission groove 17, a motor 18, a transmission shaft 19, a plug block 20, a connecting pin 21, and a spring 22.

[0029] Please see Figure 1 The outlet of the pure water tank 1 is connected to the pure water circulation pump 2 through a pipe. The outlet of the pure water circulation pump 2 is equipped with an electrolytic cell 3 through a pipe. A gas-liquid separator 4 is installed at the outlet of the electrolytic cell 3. Both the electrolytic cell 3 and the gas-liquid separator 4 are equipped with an anode and a cathode. A proton exchange membrane is installed between the anode and the cathode inside the electrolytic cell 3 and the gas-liquid separator 4.

[0030] The buffer water tank 5 is connected to the outlet of the gas-water separator 4 via a pipe. The inlet of the buffer water tank 5 is connected to the inlet pump 6 via a pipe. Using a dual-channel system for both electrolyzed and drinking water, during normal use, a small amount of pure water sufficient for electrolysis is added to the pure water tank 1. Then, the switch is turned on, and the pure water circulation pump 2 starts operating. The water in the pure water tank 1 enters the electrolysis cell 3 to participate in electrolysis. The generated oxygen and water then circulate back into the pure water tank 1. Oxygen is discharged from the oxygen vent at the top of the pure water tank 1, while hydrogen enters the gas-water separator 4, where it is separated from water. Simultaneously, the inlet pump 6 automatically draws water into the buffer water tank 5. The buffer water tank 5 is equipped with a high-pressure hydrogen dissolving rod 13. Under the action of the high-pressure hydrogen dissolving rod 13, hydrogen enters the water, mixes with the water in the buffer water tank 5, and then is discharged. In this way, the human body can drink various types of water, improving the practicality of the hydrogen-rich water device. Please refer to [link to relevant documentation]. Figure 2 A mounting platform 7 is welded to the lower left side of the buffer tank 5. Please refer to [link / reference]. Figure 3 A T-shaped platform 8 is installed on the top left side of the mounting platform 7;

[0031] Please see Figure 4 The fitting 9 is installed on the top left and right sides of the T-shaped platform 8. The fitting 9 has a plug plate 10 inserted inside. The front middle of the plug plate 10 is connected to the assembly plate 11. The upper right side of the assembly plate 11 is fitted with a pipe clamp 12.

[0032] The high-pressure hydrogen dissolving rod 13 is inserted inside the pipe clamp 12. A motor 18 is installed at the top center of the mounting platform 7. Please refer to [link / reference]. Figure 5A drive shaft 19 is coaxially connected to the top of the rotor of motor 18. A plug 20 is mounted on the outer side of the top of the drive shaft 19 via a bearing. A drive groove 17 is formed inside the assembly plate 11, and the plug 20 is inserted into the drive groove 17. The length of the plug 10 is greater than the length of the T-shaped platform 8. A flexible hose 14 is connected to the top of each high-pressure hydrogen dissolving rod 13. The top of the flexible hose 14 penetrates the corresponding position at the top of the buffer tank 5. Through grooves 15 are formed on the left side of the buffer tank 5 corresponding to the position of the assembly plate 11 and on the top corresponding to the position of the flexible hose 14. The assembly plate 11 and the flexible hose 14 both pass through the corresponding positions of the through grooves 15. Sealing sleeves 16 are fitted onto the outer sides of the flexible hose 14 and the assembly plate 11 at positions corresponding to the through grooves 15. The outer side of 16 is connected to the tank panel of the buffer water tank 5. The rear of the mounting plate 9 and the insert plate 10 on the left side are equipped with connecting pins 21. The outside of the connecting pins 21 is fitted with springs 22. The rotation of the drive shaft 19 and the insert block 20 is driven by the motor 18, which in turn drives the mounting plate 11 and the insert plate 10 to move back and forth. This causes the high-pressure hydrogen dissolving rod 13 to move left and right, which makes the contact area between hydrogen and water constantly change and increase. During the swing, hydrogen will form different flow paths and vortices in the water, allowing hydrogen to come into more full contact with water, thereby improving the dissolution rate and efficiency of hydrogen in water. At the same time, the repeated swing will make the relative motion between hydrogen and water more intense, thereby enhancing the gas-liquid mass transfer effect. This helps hydrogen diffuse into the water more quickly, increasing the amount and speed of hydrogen dissolution. Furthermore, the reciprocating oscillation of the high-pressure hydrogen dissolving rod 13 can make the distribution of hydrogen in the water more uniform, reducing the hydrogen concentration gradient, which helps improve the quality and stability of hydrogen-rich water, making the performance of hydrogen-rich water more consistent, and improving the quality of use of the hydrogen-rich water device.

[0033] This solution employs a dual-channel system for both electrolyzed water and drinking water. During normal use, a small amount of pure water sufficient for electrolysis is added to the pure water tank 1. Then, the switch is turned on, and the pure water circulation pump 2 starts operating. The water in the pure water tank 1 enters the electrolysis cell 3 to participate in electrolysis. The generated oxygen and water then circulate back into the pure water tank 1. Oxygen is discharged through the oxygen vent at the top of the pure water tank 1, while hydrogen enters the gas-water separator 4, where it is separated from water. Simultaneously, the water pump 6 automatically draws water into the buffer water tank 5. The buffer water tank 5 is equipped with a high-pressure hydrogen dissolving rod 13. Under the action of the high-pressure hydrogen dissolving rod 13, hydrogen enters the water, mixes with water in the buffer water tank 5, and then is discharged. In this way, the human body can drink water of various qualities, improving the practicality of the hydrogen-rich water device. Simultaneously, the motor 18 drives the rotation of the transmission shaft 19 and the insert block 20, which in turn drives the assembly plate 11 and the insert plate 10 to reciprocate left and right. This, in turn, causes the high-pressure hydrogen dissolving rod 13 to move left and right, continuously changing and increasing the contact area between hydrogen and water. During the oscillation, hydrogen forms different flow paths and vortices in the water, allowing for more complete contact between hydrogen and water, thereby improving the dissolution rate and efficiency of hydrogen in water. Furthermore, the repeated oscillation makes the relative motion between hydrogen and water more intense, enhancing the gas-liquid mass transfer effect. This helps hydrogen diffuse into the water more quickly, increasing the amount and speed of hydrogen dissolution. The reciprocating oscillation of the high-pressure hydrogen dissolving rod 13 also makes the distribution of hydrogen in the water more uniform, reducing the hydrogen concentration gradient, which helps improve the quality and stability of the hydrogen-rich water, making its performance more consistent and improving the overall quality of use of the hydrogen-rich water device.

[0034] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0035] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A hydrogen-rich water device with adjustable hydrogen-water mixing, characterized in that, include: Pure water tank (1), the outlet of the pure water tank (1) is connected to a pure water circulation pump (2) through a pipe, the outlet of the pure water circulation pump (2) is equipped with an electrolytic cell (3) through a pipe, and an air-water separator (4) is installed at the outlet of the electrolytic cell (3). A buffer water tank (5) is connected to the outlet of the gas-water separator (4) via a pipe. A water pump (6) is connected to the inlet of the buffer water tank (5) via a pipe. An installation platform (7) is welded to the lower left side of the buffer water tank (5). A T-shaped platform (8) is installed on the top left side of the installation platform (7). The assembly (9) is installed on the top left and right sides of the T-shaped platform (8). The assembly (9) is equipped with insert plates (10). The front middle of the insert plate (10) is connected to the assembly plate (11). The upper right side of the assembly plate (11) is equipped with pipe clamps (12). A high-pressure hydrogen dissolving rod (13) is inserted inside the pipe clamp (12). A motor (18) is installed at the top center of the mounting platform (7). A drive shaft (19) is coaxially connected to the top of the rotor of the motor (18). A plug (20) is installed on the outer side of the top of the drive shaft (19) through a bearing. A drive groove (17) is opened inside the assembly plate (11). The plug (20) is inserted into the drive groove (17).

2. The hydrogen-rich water device with adjustable hydrogen-water mixing according to claim 1, characterized in that: The electrolytic cell (3) and the gas-water separator (4) are both equipped with an anode and a cathode, and a proton exchange membrane is installed between the anode and the cathode inside the electrolytic cell (3) and the gas-water separator (4).

3. The hydrogen-rich water device with adjustable hydrogen-water mixing according to claim 1, characterized in that: The length of the insert plate (10) is greater than the length of the T-shaped platform (8), and the top of each of the high-pressure hydrogen dissolving rods (13) is connected to a flexible tube (14), the top of which penetrates the top of the buffer water tank (5) at the corresponding position.

4. The hydrogen-rich water device with adjustable hydrogen-water mixing according to claim 3, characterized in that: The buffer tank (5) has through slots (15) on the left side corresponding to the mounting plate (11) and on the top corresponding to the hose (14). The mounting plate (11) and the hose (14) both pass through the through slots (15) at the corresponding positions.

5. The hydrogen-rich water device with adjustable hydrogen-water mixing according to claim 4, characterized in that: The hose (14) and the assembly plate (11) are fitted with sealing sleeves (16) at positions corresponding to the through groove (15), and the outer side of the sealing sleeves (16) is connected to the body panel of the buffer water tank (5).

6. The hydrogen-rich water device with adjustable hydrogen-water mixing according to claim 1, characterized in that: The rear of the mounting kit (9) and the insert plate (10) on the left side are both equipped with connecting pins (21), and springs (22) are sleeved on the outside of the connecting pins (21).