A supersaturated hydrogen-rich water generator

By setting partitions and electrolytic sheets in the hydrogen-rich water generator, dividing the electrolytic cell into two chambers, and performing electrolysis in a confined space, the problem of low hydrogen content in traditional methods is solved, and efficient dissolution of hydrogen in water is achieved to form supersaturated hydrogen-rich water.

CN111233229BActive Publication Date: 2025-10-03SHUYU SHANGHAI ENVIRONMENTAL TECH CO LTD
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Patent Information

Application Number
CN202010194328.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-03-19
Publication Date
2025-10-03
Estimated Expiration
2040-03-19

AI Technical Summary

Technical Problem

Traditional hydrogen-rich water generators use an open electrolysis method, which results in the same pressure in the electrolytic cell cavity, causing the hydrogen-rich water produced to have a low hydrogen content.

Method used

A supersaturated hydrogen-rich water generator is designed. By setting an upper partition, a lower partition, a first electrolytic sheet, an ion membrane and a second electrolytic sheet, the electrolytic cell is divided into two chambers. Electrolysis is carried out in a confined space, and the generated hydrogen dissolves in water to form supersaturated hydrogen-rich water.

Benefits of technology

The hydrogen content in hydrogen-rich water is increased, the problem of low hydrogen content in traditional methods is solved, and the efficient dissolution of hydrogen in water is achieved.

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Abstract

The present invention is applicable to the technical field of hydrogen-rich water generators and provides a supersaturated hydrogen-rich water generator, comprising a filtering component, a reaction component, an electrolysis component and a control component; an upper partition, a first electrolytic sheet and a second electrolytic sheet are provided, thereby dividing the electrolytic cell formed by the upper reaction shell and the lower reaction shell into two chambers; at the same time, filtered water is discharged into the inner cavities of the two chambers through the outlet pipe, the outlet pipe and the two inlet pipes respectively; when the first electrolytic sheet and the second electrolytic sheet are energized and working, the water can be electrolyzed to generate hydrogen; since the generated hydrogen is in the enclosed space formed by the upper reaction shell and the lower reaction shell, the pressure in the electrolytic cell formed by the upper reaction shell and the lower reaction shell increases, thereby promoting the dissolution of hydrogen in the unelectrolyzed water, thereby forming supersaturated hydrogen-rich water, avoiding the problem that the traditional hydrogen-rich water generator adopts an open electrolysis method, so that the pressure in the electrolytic cell cavity is the same, resulting in a low hydrogen content in the generated hydrogen-rich water.
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Description

Technical Field

[0001] The present invention belongs to the technical field of hydrogen-rich water generators, and in particular relates to a supersaturated hydrogen-rich water generator. Background Art

[0002] As we all know, the human body is composed of cells. Diseases ultimately stem from cell damage, and aging is caused by cell aging or necrosis. The primary culprit for cell disease and aging is excess oxygen free radicals. Oxygen enters the body through breathing and is transported to each cell via red blood cells. To generate energy within each cell, sugar and fat are burned and consumed. This oxygen also burns, and 2% of it becomes reactive oxygen species. Food additives, chlorine-containing beverages, and other factors can disrupt the intestinal microbiome, leading to abnormal fermentation in the stomach and intestines, which can lead to the production of reactive oxygen species in large quantities. Other factors that generate large amounts of reactive oxygen species include intense exercise, exposure to ultraviolet light, smoking, alcohol, electromagnetic radiation from hand gestures, stress, and exposure to bacteria, viruses, air pollution, radiation, X-rays, anticancer drugs, and dyes. Hydrogen is a colorless, odorless, non-toxic, and tasteless gas. Its unique properties provide it with numerous biological advantages. A more obvious feature is its strong penetrability, which allows it to easily enter any part of the cell, such as the nucleus and mitochondria. This is an important feature that makes hydrogen useful in treating diseases.

[0003] Traditional hydrogen-rich water generators use an open electrolysis method, which keeps the pressure inside the electrolytic cell constant, resulting in a lower hydrogen content in the produced hydrogen-rich water. Summary of the Invention

[0004] The present invention provides a supersaturated hydrogen-rich water generator, which aims to solve the problem that the traditional hydrogen-rich water generator adopts an open electrolysis method, which makes the pressure in the electrolytic cell cavity uniform, resulting in a low hydrogen content in the generated hydrogen-rich water.

[0005] The present invention is achieved as follows: a supersaturated hydrogen-rich water generator includes a filter component, a reaction component, an electrolysis component and a control component;

[0006] The filter assembly includes a shell, an inner cavity of the shell is fixedly connected to a water tank partition, an upper side wall of the shell is fixedly connected to a top cover, a filter element is fixedly connected to the center of a side of the top cover close to the water tank partition, a water injection pipe is fixedly connected to the center of the inner cavity of the top cover, a water outlet pipe is fixedly connected to the center of the water tank partition, and a first three-way pipe is fixedly connected to the side of the water outlet pipe away from the water tank partition;

[0007] The reaction assembly includes a lower reaction shell, which is fixedly connected to the inner cavity of the shell, an upper reaction shell is fixedly connected above the lower reaction shell, both sides of the upper reaction shell are fixedly connected to a water inlet pipe connected to the first three-way pipe, and both sides of the lower reaction shell are fixedly connected to a drain pipe. One side of the inner cavity of the upper reaction shell is fixedly connected to an upper partition, and the other side of the inner cavity of the upper reaction shell is evenly connected to a plurality of groups of transparent tubes, the inner cavities of the transparent tubes are fixedly connected to ultraviolet sterilization lamps, and one side of the inner cavity of the lower reaction shell is fixedly connected to a lower partition;

[0008] The electrolysis assembly includes a connecting block, and two connecting blocks are provided. The two connecting blocks are respectively fixedly connected to the transparent tube and the side of the upper partition away from the upper reaction shell. The first electrolytic sheet, the ion membrane and the second electrolytic sheet are fixedly connected between the two connecting blocks from top to bottom. A slot is opened on the connecting block close to the lower partition, and a limiting block is fixedly connected to the side of the lower partition away from the lower reaction shell. The limiting block is clamped in the inner cavity of the slot, and a rubber sealing ring is fixedly connected to one end of the limiting block close to the connecting block. The end of the drain pipe away from the lower reaction shell is fixedly connected to the second tee pipe, and the end of the second tee pipe away from the drain pipe is fixedly connected to the connecting pipe. The end of the connecting pipe away from the second tee pipe is fixedly connected to a water outlet faucet, and the water outlet faucet is fixedly connected to the outside of the shell.

[0009] Preferably, the control component includes an AC-DC module, which is fixedly connected to the shell, the output end of the AC-DC module is electrically connected to the first electrolyte sheet and the second electrolyte sheet, the input end of the AC-DC module is electrically connected to a power supply, the power supply is fixedly connected to the inner cavity of the shell, the inner cavity of the shell is fixedly connected to a single-chip microcomputer, and the single-chip microcomputer is electrically connected to the power supply.

[0010] Preferably, a sealing ring is clamped at the connection between the upper reaction shell and the lower reaction shell.

[0011] Preferably, an electric valve is fixedly connected between the water outlet pipe and the first three-way pipe, and the electric valve is electrically connected to the single-chip microcomputer.

[0012] Preferably, a liquid level sensor is fixedly connected to one side wall of the shell, the liquid level sensor is electrically connected to the single chip computer, and the liquid level sensor is located between the water tank partition and the top cover.

[0013] Preferably, a plurality of connecting bolts are evenly and fixedly connected between the lower reaction shell and the upper reaction shell.

[0014] Preferably, a heavy metal sensor is fixedly connected between the second three-way pipe and the connecting pipe, and the heavy metal sensor is electrically connected to the single-chip microcomputer. An indicator light is fixedly connected to the outer wall of the shell, and the indicator light is electrically connected to the single-chip microcomputer.

[0015] Preferably, the four corners of the shell are fixedly connected with supporting feet.

[0016] Preferably, a water outlet faucet is provided below the water outlet faucet, and the water outlet faucet is detachably connected to the shell.

[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: a supersaturated hydrogen-rich water generator of the present invention divides the electrolytic cell formed by the upper reaction shell and the lower reaction shell into two chambers by arranging an upper partition, a lower partition, a first electrolytic sheet, an ion membrane and a second electrolytic sheet. At the same time, the filtered water is discharged into the inner cavities of the two chambers through the outlet pipe, the outlet pipe and the two water inlet pipes respectively. When the first electrolytic sheet and the second electrolytic sheet are energized, the water can be electrolyzed to generate hydrogen. Since the generated hydrogen is in the enclosed space formed by the upper reaction shell and the lower reaction shell, the pressure in the electrolytic cell formed by the upper reaction shell and the lower reaction shell increases, which promotes the dissolution of hydrogen in the unelectrolyzed water, thereby forming supersaturated hydrogen-rich water, avoiding the problem that the traditional hydrogen-rich water generator adopts an open electrolysis method, so that the pressure in the electrolytic cell cavity is the same, resulting in a low hydrogen content in the generated hydrogen-rich water. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a cross-sectional view of the structure of the present invention;

[0019] Figure 2 This is an enlarged view of the structure of part A in the present invention;

[0020] Figure 3 This is a principle block diagram of the present invention;

[0021] In the figure: 1-filter assembly, 11-housing, 12-water tank partition, 13-top cover, 14-water injection pipe, 15-filter element, 16-water outlet pipe, 17-liquid level sensor, 18-electric valve, 19-first three-way pipe, 2-reaction assembly, 21-upper reaction shell, 22-lower reaction shell, 23-water inlet pipe, 24-drain pipe, 25-connecting bolt, 26-upper partition, 27-lower partition, 28-sealing ring, 29-transparent tube, 210-purple External sterilization lamp, 3-electrolytic assembly, 31-, connecting block, 32-first electrolytic sheet, 33-ion membrane, 34-second electrolytic sheet, 35-slot, 36-rubber sealing ring, 37-limiting block, 38-second three-way pipe, 39-connecting pipe, 310-water tap, 4-control component, 41-heavy metal sensor, 42-power supply, 43-single-chip microcomputer, 44-AC to DC module, 45-support foot, 46-water collection box, 47-indicator light. DETAILED DESCRIPTION

[0022] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0023] See also Figure 1-3 , the present invention provides a technical solution: a supersaturated hydrogen-rich water generator, comprising a filter component 1, a reaction component 2, an electrolysis component 3 and a control component 4;

[0024] The filter assembly 1 includes a housing 11. The inner cavity of the housing 11 is fixedly connected to a water tank partition 12. A top cover 13 is fixedly connected to the upper side wall of the housing 11. A filter element 15 is fixedly connected to the center of the side of the top cover 13 close to the water tank partition 12. A water injection pipe 14 is fixedly connected to the center of the inner cavity of the top cover 13. A water outlet pipe 16 is fixedly connected to the center of the water tank partition 12. A first three-way pipe 19 is fixedly connected to the side of the water outlet pipe 16 away from the water tank partition 12.

[0025] The reaction assembly 2 includes a lower reaction shell 22, which is fixedly connected to the inner cavity of the shell 11. The upper reaction shell 21 is fixedly connected to the upper part of the lower reaction shell 22. Both sides of the upper reaction shell 21 are fixedly connected to a water inlet pipe 23 connected to the first three-way pipe 19. Both sides of the lower reaction shell 22 are fixedly connected to a drain pipe 24. One side of the inner cavity of the upper reaction shell 21 is fixedly connected to an upper partition 26. The other side of the inner cavity of the upper reaction shell 21 is evenly connected to a plurality of groups of transparent tubes 29. The inner cavity of the transparent tubes 29 is fixedly connected to an ultraviolet germicidal lamp 210. One side of the inner cavity of the lower reaction shell 22 is fixedly connected to a lower partition 27.

[0026] The electrolytic assembly 3 includes a connecting block 31, and two connecting blocks 31 are respectively fixedly connected to the transparent tube 29 and the side of the upper partition 26 away from the upper reaction shell 21. The first electrolytic sheet 32, the ion membrane 33 and the second electrolytic sheet 34 are fixedly connected between the two connecting blocks 31 from top to bottom. A slot 35 is opened on the connecting block 31 near the lower partition 27. The side of the lower partition 27 away from the lower reaction shell 22 is fixedly connected to a limiting block 37. The limiting block 37 is snapped into the inner cavity of the slot 35. One end of the limiting block 37 close to the connecting block 31 is fixedly connected to a rubber sealing ring 36. The end of the drain pipe 24 away from the lower reaction shell 22 is fixedly connected to the second tee 38. The end of the second tee 38 away from the drain pipe 24 is fixedly connected to a connecting pipe 39. The end of the connecting pipe 39 away from the second tee 38 is fixedly connected to a water outlet faucet 310. The water outlet faucet 310 is fixedly connected to the outside of the shell 11.

[0027] The control component 4 includes an AC-DC module 44, which is fixedly connected to the shell 11. The output end of the AC-DC module 44 is electrically connected to the first electrolyte sheet 32 ​​and the second electrolyte sheet 34. The input end of the AC-DC module 44 is electrically connected to the power supply 42, which is fixedly connected to the inner cavity of the shell 11. The inner cavity of the shell 11 is fixedly connected to a single-chip microcomputer 43, and the single-chip microcomputer 43 is electrically connected to the power supply 42.

[0028] In this embodiment, by providing a filter element 15, water can be filtered by the filter element 15 when it is discharged from the water injection pipe 14 into the space between the water tank partition 12 and the top cover 13. By providing an upper partition 26, a lower partition 27, a first electrolytic sheet 32, an ion membrane 33 and a second electrolytic sheet 34, the electrolytic cell formed by the upper reaction shell 21 and the lower reaction shell 22 is divided into two chambers. At the same time, the filtered water is discharged into the inner cavities of the two chambers through the outlet pipe 16, the outlet pipe 16 and the two water inlet pipes 23 respectively. When the first electrolytic sheet 32 ​​and the second electrolytic sheet 34 are energized, the water can be electrolyzed to generate hydrogen. Since the generated hydrogen is in the upper reaction shell 21 and the lower reaction shell 22, the electrolytic cell is divided into two chambers. In the enclosed space, the pressure in the electrolytic cell formed by the upper reaction shell 21 and the lower reaction shell 22 increases, which in turn causes hydrogen to dissolve in the unelectrolyzed water, thereby forming hydrogen-rich water. During the water electrolysis process, the ultraviolet sterilization lamp 210 in the inner cavity of the transparent tube 29 is energized to supply water, thereby sterilizing the water in the inner cavities of the upper reaction shell 21 and the lower reaction shell 22, thereby meeting the drinking standards. By providing a water tap 310, the hydrogen-rich water between the upper reaction shell 21 and the lower reaction shell 22 can be discharged after opening the connection block 31. The AC-DC module 44 can convert the AC power flowing into the power supply 42 into positive and negative DC power, and connect it to the first electrolytic sheet 32 ​​and the second electrolytic sheet 34.

[0029] Furthermore, a sealing ring 28 is clamped at the connection between the upper reaction shell 21 and the lower reaction shell 22 .

[0030] In this embodiment, a sealing ring 28 is provided at the connection between the upper reaction shell 21 and the lower reaction shell 22 to prevent water leakage from the upper reaction shell 21 and the inner cavity of the water inlet pipe 23 .

[0031] Furthermore, an electric valve 18 is fixedly connected between the water outlet pipe 16 and the first three-way pipe 19 , and the electric valve 18 is electrically connected to the single-chip microcomputer 43 .

[0032] In this embodiment, the electric valve 18 is provided so that when the space between the upper reaction shell 21 and the lower reaction shell 22 is filled with water, the single chip microcomputer 43 can control the electric valve 18 to close, so that the upper reaction shell 21 and the lower reaction shell 22 are in a closed space.

[0033] Furthermore, a liquid level sensor 17 is fixedly connected to one side wall of the housing 11 . The liquid level sensor 17 is electrically connected to the single chip microcomputer 43 . The liquid level sensor 17 is located between the water tank partition 12 and the top cover 13 .

[0034] In this embodiment, by setting up a liquid level sensor 17, a set of solenoid valves can be installed at one end of the water injection pipe 14, and the solenoid valves are connected to the single-chip microcomputer 43, so that the liquid level sensor 17 can detect the water level above the water tank partition 12 in real time and transmit it to the single-chip microcomputer 43 in real time. When the water level reaches the inner cavity that can fill the upper reaction shell 21 and the lower reaction shell 22, the single-chip microcomputer 43 can control the solenoid valve to close, thereby stopping the discharge of water into the top of the water tank partition 12.

[0035] Furthermore, a plurality of connecting bolts 25 are evenly and fixedly connected between the lower reaction shell 22 and the upper reaction shell 21 .

[0036] In this embodiment, the lower reaction shell 22 and the upper reaction shell 21 can be connected and fixed by the connecting bolts 25 , and the upper reaction shell 21 and the lower reaction shell 22 can be easily disassembled.

[0037] Furthermore, a heavy metal sensor 41 is fixedly connected between the second three-way pipe 38 and the connecting pipe 39 , and the heavy metal sensor 41 is electrically connected to the single-chip microcomputer 43 . An indicator light 47 is fixedly connected to the outer wall of the shell 11 , and the indicator light 47 is electrically connected to the single-chip microcomputer 43 .

[0038] In this embodiment, by setting up a heavy metal sensor 41, the heavy metal content in the generated hydrogen-rich water can be detected in real time and transmitted to the single-chip microcomputer 43 in real time. When the heavy metal content exceeds the standard, the single-chip microcomputer 43 can control the indicator light 47 to power on, thereby reminding the user to continue using the hydrogen-rich water prepared by the device. At the same time, it can remind the user to replace the second electrolyte sheet 34 and the first electrolyte sheet 32 ​​in time to avoid the heavy metal content in the prepared hydrogen-rich water exceeding the standard due to long-term use of the first electrolyte sheet 32 ​​and the second electrolyte sheet 34 or replacement of the inferior first electrolyte sheet 32 ​​and the second electrolyte sheet 34, and the user continues to use the water with excessive heavy metals.

[0039] Furthermore, support legs 45 are fixedly connected to the four corners of the housing 11 .

[0040] In this embodiment, by providing support legs 45 at the four corners of the housing 11 , the support legs 45 can effectively support the device.

[0041] Furthermore, a water outlet faucet 310 is provided below the water outlet faucet 310 , and the water outlet faucet 310 is detachably connected to the housing 11 .

[0042] In this embodiment, the water receiving box 46 is used so that a cup can be placed on the water receiving box 46 and water spilled during the pouring process can be collected.

[0043] The working principle and use process of the present invention are as follows: After the present invention is installed, the water inlet pipe is connected to the end of the water injection pipe 14 away from the top cover 13, and a group of solenoid valves are installed in series on the water inlet pipe and connected to the single-chip microcomputer 43. Then, the water is discharged into the inner cavity of the filter element 15 through the water inlet pipe and the water injection pipe 14, so as to filter the discharged water. At the same time, the liquid level sensor 17 detects the water level in real time and transmits it to the single-chip microcomputer 43 in real time. When the water level reaches the inner cavity that can fill the upper reaction shell 21 and the lower reaction shell 22, the single-chip microcomputer 43 can control the solenoid valve to close, thereby stopping the water from being discharged into the upper part of the water tank partition 12. Then the electric valve 18 is opened, so that the water is discharged from the outlet pipe 16 and the first three-way pipe 19 into the electric filter formed by the upper reaction shell 21 and the lower reaction shell 22. In the electrolysis tank, the single-chip microcomputer 43 controls the electric valve 18 to close again, and then energizes the first electrolytic sheet 32 ​​and the second electrolytic sheet 34, so that the first electrolytic sheet 32 ​​and the second electrolytic sheet 34 electrolyze the water in the electrolytic tank and generate hydrogen. Since the generated hydrogen is in the enclosed space formed by the upper reaction shell 21 and the lower reaction shell 22, the pressure in the electrolytic tank formed by the upper reaction shell 21 and the lower reaction shell 22 increases, and the hydrogen is caused to dissolve in the unelectrolyzed water, thereby forming hydrogen-rich water. During the water electrolysis process, the ultraviolet sterilization lamp 210 in the inner cavity of the transparent tube 29 is energized to supply water, thereby sterilizing the water in the inner cavities of the upper reaction shell 21 and the lower reaction shell 22. Then the user can discharge the generated hydrogen-rich water by switching the water outlet faucet 310.

[0044] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A supersaturated hydrogen-rich water generator, characterized by: It comprises a filtering component (1), a reaction component (2), an electrolysis component (3) and a control component (4); The filter assembly (1) comprises a shell (11), the inner cavity of the shell (11) is fixedly connected to a water tank partition (12), the upper side wall of the shell (11) is fixedly connected to a top cover (13), the center of a side of the top cover (13) close to the water tank partition (12) is fixedly connected to a filter element (15), the center of the inner cavity of the top cover (13) is fixedly connected to a water injection pipe (14), the center of the water tank partition (12) is fixedly connected to a water outlet pipe (16), and the side of the water outlet pipe (16) away from the water tank partition (12) is fixedly connected to a first three-way pipe (19); The reaction assembly (2) comprises a lower reaction shell (22), the lower reaction shell (22) being fixedly connected to the inner cavity of the shell (11), an upper reaction shell (21) being fixedly connected above the lower reaction shell (22), a water inlet pipe (23) connected to the first three-way pipe (19) being fixedly connected on both sides of the upper reaction shell (21), a drain pipe (24) being fixedly connected on both sides of the lower reaction shell (22), an upper partition (26) being fixedly connected to one side of the inner cavity of the upper reaction shell (21), a plurality of groups of transparent tubes (29) being evenly fixedly connected to the other side of the inner cavity of the upper reaction shell (21), an ultraviolet sterilization lamp (210) being fixedly connected to the inner cavity of the transparent tube (29), and a lower partition (27) being fixedly connected to one side of the inner cavity of the lower reaction shell (22); The electrolysis assembly (3) includes a connecting block (31), two connecting blocks (31) are provided, and the two connecting blocks (31) are respectively fixedly connected to the transparent tube (29) and the side of the upper partition (26) away from the upper reaction shell (21), and a first electrolytic sheet (32), an ion membrane (33) and a second electrolytic sheet (34) are fixedly connected between the two connecting blocks (31) from top to bottom. A card slot (35) is provided on a side of the connecting block (31) close to the lower partition (27), and a limiting block (37) is fixedly connected to a side of the lower partition (27) away from the lower reaction shell (22). The limiting block (37) is clamped in the inner cavity of the clamping slot (35), and the end of the limiting block (37) close to the connecting block (31) is fixedly connected to a rubber sealing ring (36), the end of the drain pipe (24) away from the lower reaction shell (22) is fixedly connected to a second three-way pipe (38), the end of the second three-way pipe (38) away from the drain pipe (24) is fixedly connected to a connecting pipe (39), the end of the connecting pipe (39) away from the second three-way pipe (38) is fixedly connected to a water outlet tap (310), and the water outlet tap (310) is fixedly connected to the outside of the shell (11); The control component (4) includes an AC-DC module (44), the AC-DC module (44) is fixedly connected to the housing (11), the output end of the AC-DC module (44) is electrically connected to the first electrolyte sheet (32) and the second electrolyte sheet (34), the input end of the AC-DC module (44) is electrically connected to a power supply (42), the power supply (42) is fixedly connected to the inner cavity of the housing (11), the inner cavity of the housing (11) is fixedly connected to a single-chip microcomputer (43), and the single-chip microcomputer (43) is electrically connected to the power supply (42); A heavy metal sensor (41) is fixedly connected between the second three-way pipe (38) and the connecting pipe (39), and the heavy metal sensor (41) is electrically connected to the single-chip microcomputer (43). An indicator light (47) is fixedly connected to the outer wall of the housing (11), and the indicator light (47) is electrically connected to the single-chip microcomputer (43); A sealing ring (28) is clamped at the connection between the upper reaction shell (21) and the lower reaction shell (22).

2. A supersaturated hydrogen-rich water generator according to claim 1, characterized in that: An electric valve (18) is fixedly connected between the water outlet pipe (16) and the first three-way pipe (19), and the electric valve (18) is electrically connected to the single-chip computer (43).

3. The supersaturated hydrogen-rich water generator according to claim 1, characterized in that: A liquid level sensor (17) is fixedly connected to one side wall of the housing (11), the liquid level sensor (17) is electrically connected to the single chip computer (43), and the liquid level sensor (17) is located between the water tank partition (12) and the top cover (13).

4. A supersaturated hydrogen-rich water generator according to claim 1, characterized in that: A plurality of connecting bolts (25) are evenly and fixedly connected between the lower reaction shell (22) and the upper reaction shell (21).

5. The supersaturated hydrogen-rich water generator according to claim 1, characterized in that: The four corners of the housing (11) are fixedly connected with support legs (45).

6. The supersaturated hydrogen-rich water generator according to claim 1, characterized in that: The water outlet faucet (310) is detachably connected to the housing (11).

Citation Information

Patent Citations

  • Hydrogen generation system who combines filter equipment

    CN205953728U

  • Hydrogen water all -in -one

    CN207958002U

  • Supersaturated hydrogen-rich water generator

    CN211921170U