High-energy hydrogen-rich electrolyzed water system
By combining components such as RO membrane machine, hydrogen production system and plasma resonance energy loader, the mixing and molecular structure of hydrogen and water are improved, and the existing hydrogen-rich water preparation device is solved, and high-energy hydrogen-rich drinking water is prepared, which improves the health effect.
Patent Information
- Application Number
- CN202422377149.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2023-10-07
- Filing Date
- 2024-09-27
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-09-27
AI Technical Summary
The existing hydrogen-rich water preparation device or system has limited efficacy and cannot effectively improve hydrogen content and activity.
The combination of RO membrane machine, hydrogen production system, pure water tank, gas-liquid mixing system and plasma resonance energy loader is adopted to enhance the mixing of hydrogen and water and molecular structure modification through components such as hydrogen mixing pump, hydrogen-rich water cutting head and nanocoil group to form high-energy hydrogen-rich drinking water.
High-energy hydrogen-rich drinking water is prepared, which has the advantages of weak alkalinity, high activity, and easy absorption, which improves the health effect of hydrogen-rich water.
Smart Images

Figure CN223188984U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of drinking water systems, in particular to a high-energy hydrogen-rich water electrolysis system. Background Art
[0002] Hydrogen-rich water refers to water containing trace amounts of hydrogen molecules. It is produced by electrolyzing pure water to generate hydrogen, which is then physically dissolved in hydrogen. Studies have shown that hydrogen-rich water has a good antioxidant effect. Regular consumption of hydrogen-rich water can delay human aging, prevent atherosclerosis, and resist inflammation of internal organs. The various hydrogen-rich water preparation devices or systems currently on the market only have hydrogen-rich effects, and the efficacy they can achieve is still relatively limited. Therefore, the applicant provides an electrolysis water system that can produce high-energy hydrogen-rich water for consumers to choose and use by improving and perfecting the existing hydrogen-rich water preparation devices or systems. Summary of the Invention
[0003] The purpose of the utility model is to solve the above existing problems and provide a high-energy hydrogen-rich water electrolysis system with a simple and reasonable structure.
[0004] A high-energy hydrogen-rich electrolytic water system includes an RO membrane machine and a hydrogen production system. The water inlet of the RO membrane machine is connected to a water supply source, the water outlet of the RO membrane machine is connected to a water production waterway, and a pure water tank for storing direct drinking water, a gas-liquid mixing system for mixing direct drinking water and hydrogen to produce hydrogen-rich water, and a plasma resonance energy loader for loading hydrogen-rich water are sequentially connected in series along the water production waterway. The gas outlet of the hydrogen production system is connected to the water production waterway between the pure water tank and the gas-liquid mixing system.
[0005] The purpose of the utility model can also be solved by the following technical measures:
[0006] As a more specific solution, the gas-liquid mixing system includes a hydrogen mixing pump for mixing hydrogen into the water production waterway and a hydrogen-rich water cutting head for breaking up the hydrogen in the water production waterway. The hydrogen mixing pump and the hydrogen-rich water cutting head are connected in series in the water production waterway in sequence.
[0007] As a further solution, the water outlet end of the gas-liquid mixing system is divided into a first hydrogen-rich water path and a second hydrogen-rich water path; the first hydrogen-rich water path is connected to a first water inlet valve, and the second hydrogen-rich water path is sequentially connected in series with a second water inlet valve and a plasma resonance energy loader.
[0008] As a further solution, the first hydrogen-rich water channel and the second hydrogen-rich water channel are respectively provided with a pure hydrogen-rich water outlet and a high-energy hydrogen-rich water outlet; the pure hydrogen-rich water outlet and the high-energy hydrogen-rich water outlet are respectively connected to two corresponding water outlet taps, or are converged and connected to a single water outlet tap.
[0009] As a further solution, the plasma resonance energy loader includes a metal shell, which is provided with a pure hydrogen-rich water inlet and a high-energy hydrogen-rich water outlet connected to the second hydrogen-rich water path, and the inner cavity of the metal shell accommodates one or more nano-coil groups along the water flow direction.
[0010] As a further solution, the nanocoil group includes an inner coil, a middle coil and an outer coil, and the inner coil, the middle coil and the outer coil are spirally wound with different coil diameters, and the middle coil and the inner coil are sequentially arranged in series in the outer coil along the coil axis of the outer coil.
[0011] As a further solution, the hydrogen production system includes a water supply pump and an electrolyzer for electrolyzing water to produce hydrogen. The water inlet end of the water supply pump is connected to the water supply source, and the water outlet end of the water supply pump is connected to the electrolyzer. The electrolyzer is provided with an air outlet, and the air outlet is connected to the water production waterway through a hydrogen discharge pipe.
[0012] As a further solution, the hydrogen production system also includes a water storage tank, the water outlet of the water storage tank is connected to the water inlet of the water supply pump, the water inlet of the water storage tank is connected to the water supply source or the water outlet of the RO membrane machine, and the water storage tank is also provided with a hydrogen production water recovery port, and the hydrogen production water recovery port is connected to the circulation drain port of the electrolyzer.
[0013] As a further solution, a one-way valve is further connected to the hydrogen exhaust pipeline.
[0014] As a further solution, the hydrogen-rich water cutting head includes a tube cutting fitting, which has an inlet at one end and an outlet at the other end. The inner cavity of the tube cutting fitting is provided with several cutting plates that intercept its inner cavity between the inlet and the outlet, and each cutting plate is provided with multiple cutting holes.
[0015] The beneficial effects of the utility model are as follows:
[0016] The utility model discloses a high-energy hydrogen-rich electrolysis water system. In addition to being able to normally produce pure hydrogen-rich drinking water in the water production line, this electrolysis water system can also discharge the pure hydrogen-rich drinking water into a plasma resonance energy loader. The plasma resonance energy loader allows the loaded liquid to form small molecules, thereby producing high-energy hydrogen-rich drinking water. The high-energy hydrogen-rich drinking water has the advantages of weak alkalinity, high activity, and easy absorption. It can better play the role of the liquid itself and is healthier to drink. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the assembly structure of an embodiment of the present invention.
[0018] Figure 2This is a schematic diagram of the specific structure of the hydrogen production system in this utility model.
[0019] Figure 3 This is a schematic diagram of the cross-sectional structure of the plasma resonance energy loader in the utility model.
[0020] Figure 4 This is a schematic diagram of the cross-sectional structure of the nanocoil group in the present invention.
[0021] Figure 5 This is a schematic diagram of the cross-sectional structure of the hydrogen-rich water cutting head of the present invention. DETAILED DESCRIPTION
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] like Figures 1 to 5 As shown, a high-energy hydrogen-rich electrolysis water system includes an RO membrane machine 1 and a hydrogen production system 2. The water inlet end of the RO membrane machine 1 is connected to the water supply source, and the water outlet end of the RO membrane machine 1 is connected to the water production waterway A. A pure water tank 4 for storing direct drinking water, a gas-liquid mixing system for mixing direct drinking water and hydrogen to produce hydrogen-rich water, and a plasma resonance energy loader 7 for loading hydrogen-rich water are connected in series along the water production waterway A in sequence. The gas outlet end of the hydrogen production system 2 is connected to the water production waterway A between the pure water tank 4 and the gas-liquid mixing system.
[0024] In addition to being able to normally produce pure hydrogen-rich drinking water in the water production line, this electrolysis water system can also discharge the pure hydrogen-rich drinking water into the plasma resonance energy loader. The plasma resonance energy loader allows the loaded liquid to form small molecules, thereby producing high-energy hydrogen-rich drinking water. High-energy hydrogen-rich drinking water has the advantages of weak alkalinity, high activity, and easy absorption. It can better play the role of the liquid itself and is healthier to drink.
[0025] The plasma resonance energy loader 7 includes a metal shell 71, which is provided with a pure hydrogen-rich water inlet 701 and a high-energy hydrogen-rich water outlet 702 connected to the second hydrogen-rich water path C. The inner cavity of the metal shell 71 accommodates one or more nano-coil groups 72 along the water flow direction.
[0026] The plasma resonance energy loader 7 in this electrolysis water system consists of a metal shell 71 made of stainless steel, a special process structure with silver, copper, zinc, and carbon dioxide plasma, and a nano-coil group 72 that can generate electric and magnetic fields. The nano-coil group 72 uses 12-120V weak electricity to enhance the conduction force of the fixed magnetic gravitational field and the variable frequency magnetic gravitational field, efficiently conducts plasma frequency vibration waves, and combines the effect of plasma to change the frequency of liquid molecules, allowing the loaded liquid to form small molecules to achieve disinfection and sterilization, form weak alkalinity, small molecular clusters, high activity, enhanced permeability, cleaning ability, and metabolic power.
[0027] The nanocoil group 72 includes an inner coil 721, a middle coil 722 and an outer coil 723. The inner coil 721, the middle coil 722 and the outer coil 723 are respectively wound in a spiral shape with different coil diameters, and the middle coil 722 and the inner coil 721 are sequentially arranged in series within the outer coil 723 along the coil axis of the outer coil 723; the nanocoil group 72 with this structure can increase the contact area with hydrogen-rich water, thereby improving the efficiency of hydrogen-rich water in absorbing energy.
[0028] The gas-liquid mixing system includes a hydrogen mixing pump 5 for mixing hydrogen into the water system waterway A and a hydrogen-rich water cutting head 6 for breaking up the hydrogen in the water system waterway A, the hydrogen mixing pump 5 and the hydrogen-rich water cutting head 6 are sequentially connected in series on the water system waterway A;
[0029] The hydrogen and the direct drinking water discharged from the RO membrane machine 1 are converged in front of the hydrogen mixing pump 5. The hydrogen mixing pump 5 is used to preliminarily mix the hydrogen and direct drinking water and then pump them into the hydrogen-rich water cutting head 6. At this time, the hydrogen is in the form of bubbles with a larger diameter, and the direct drinking water and hydrogen will not be fully mixed. The direct drinking water mixed with hydrogen is then pumped into the hydrogen-rich water cutting head 6. The hydrogen bubbles with larger diameters are broken up by the hydrogen-rich water cutting head 6 into multiple small bubbles that are fully mixed into the direct drinking water to form hydrogen-rich water. This structure enables the gas-liquid mixing system to achieve primary premixing and secondary mixing.
[0030] The water outlet of the gas-liquid mixing system is divided into a first hydrogen-rich water channel B and a second hydrogen-rich water channel C; the first hydrogen-rich water channel B is connected to a first water inlet valve 8, and the second hydrogen-rich water channel C is connected in series with a second water inlet valve 9 and a plasma resonance energy loader 7;
[0031] The water production waterway A is finally divided into a first hydrogen-rich waterway B and a second hydrogen-rich waterway C for water discharge, and is controlled by a first water inlet valve 8 or a second water inlet valve 9. The first water inlet valve 8 and the second water inlet valve 9 can be manually controlled or electrically controlled. When the first water inlet valve 8 is opened but the second water inlet valve 9 is closed, pure hydrogen-rich drinking water only flows into the first hydrogen-rich waterway B and is directly discharged. When the second water inlet valve 9 is opened but the first water inlet valve 8 is closed, pure hydrogen-rich drinking water only flows into the second hydrogen-rich waterway C. After passing through the plasma resonance energy loader 7, high-energy hydrogen-rich drinking water is formed and is directly discharged. Ultimately, the water electrolysis system can selectively discharge pure hydrogen-rich drinking water or high-energy hydrogen-rich drinking water.
[0032] Hydrogen is volatile and insoluble in water. The physical action used in this application forcibly mixes hydrogen (hydrogen molecules) with water to form high-energy hydrogen-rich drinking water. High-energy hydrogen-rich drinking water contains a high concentration of hydrogen molecules, with a hydrogen molecule concentration of more than 1400PPb. The difference between pure hydrogen-rich drinking water and high-energy hydrogen-rich drinking water is that in pure hydrogen-rich drinking water, what is mixed with drinking water is hydrogen atoms.
[0033] The first hydrogen-rich water path B and the second hydrogen-rich water path C are respectively provided with a pure hydrogen-rich water outlet B1 and a high-energy hydrogen-rich water outlet C1; and in the present embodiment, the pure hydrogen-rich water outlet B1 and the high-energy hydrogen-rich water outlet C1 are converged and connected to a single water outlet faucet 10; the first water inlet valve 8 or the second water inlet valve 9 is controlled by the control system to operate, so that the water outlet faucet 10 discharges pure hydrogen-rich drinking water or high-energy hydrogen-rich drinking water.
[0034] In other embodiments, the pure hydrogen-rich water outlet B1 and the high-energy hydrogen-rich water outlet C1 can also be connected to two or more corresponding water outlet taps 10, and water can be discharged through different water outlet taps 10, and a cooling structure and / or a heating structure can be added to the first hydrogen-rich water path B and the second hydrogen-rich water path C.
[0035] The hydrogen production system 2 includes a water supply pump 11 and an electrolytic cell 12 for electrolyzing water to produce hydrogen. The water inlet end of the water supply pump 11 is connected to the water supply source, and the water outlet end of the water supply pump 11 is connected to the electrolytic cell 12. The electrolytic cell 12 is provided with an air outlet, which is connected to the water production waterway A through a hydrogen discharge pipe 13; so that the water electrolysis system itself can produce hydrogen, and the hydrogen concentration of the hydrogen-rich water can be adjusted as needed.
[0036] The hydrogen production system 2 also includes a water tank 14, and the water outlet of the water tank 14 is connected to the water inlet of the water supply pump 11. In this embodiment, the water inlet of the water tank 14 is connected to the water outlet of the RO membrane machine 1, so that the RO membrane machine 1 can provide filtered pure water to the electrolyzer 12, reducing scale accumulation in the electrolyzer 12, and the water tank 14 is also provided with a hydrogen production water recovery port 141, which is connected to the circulation drain port 121 of the electrolyzer 12. When hydrogen production is completed, the remaining direct drinking water in the electrolyzer 12 can be recovered into the water tank 14 by backflow or the like, which can prevent water accumulation in the electrolyzer 12 and scale formation.
[0037] The hydrogen discharge pipe 13 is further connected to a one-way valve 15 ; the one-way valve 15 can prevent the direct drinking water on the water production waterway A from flowing back into the electrolytic cell 12 through the hydrogen discharge pipe 13 .
[0038] The hydrogen-rich water cutting head 6 includes a tube cutting fitting 61, one end of which is provided with an inlet 611, the water inlet end is connected to the water outlet end of the hydrogen mixing pump 5, and the other end is provided with an outlet 612, and the outlet is divided into a first hydrogen-rich water path B and a second hydrogen-rich water path C. The inner cavity of the tube cutting fitting 61 is provided with a plurality of cutting plates 62 that intercept its inner cavity between the inlet and the outlet, and each cutting plate 62 is provided with a plurality of cutting holes 63; the cutting plate 62 with the cutting pin hole 63 is used to cut hydrogen into small molecules and mix them with direct drinking water under high pressure, so that the contact area between hydrogen and water is larger.
[0039] The present embodiment is not limited thereto. The above is a preferred embodiment of the present invention, which shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiment. The above embodiment and description are only for illustrating the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. These changes and improvements fall within the scope of the present invention, which is defined by the appended claims and their equivalents.
Claims
1. A high-energy hydrogen-rich water electrolysis system, characterized in that : It comprises an RO membrane machine (1) and a hydrogen production system (2), wherein the water inlet end of the RO membrane machine (1) is connected to a water supply source, the water outlet end of the RO membrane machine (1) is connected to a water production waterway (A), and a pure water tank (4) for storing direct drinking water, a gas-liquid mixing system for mixing direct drinking water and hydrogen to produce hydrogen-rich water, and a plasma resonance energy loader (7) for loading hydrogen-rich water are sequentially connected in series along the water production waterway (A), and the gas outlet end of the hydrogen production system (2) is connected to the water production waterway (A) between the pure water tank (4) and the gas-liquid mixing system.
2. A high-energy, hydrogen-rich water electrolysis system according to claim 1, characterized in that: The gas-liquid mixing system comprises a hydrogen mixing pump (5) for mixing hydrogen into a water production waterway (A) and a hydrogen-rich water cutting head (6) for breaking up the hydrogen in the water production waterway (A). The hydrogen mixing pump (5) and the hydrogen-rich water cutting head (6) are sequentially connected in series to the water production waterway (A).
3. A high-energy, hydrogen-rich water electrolysis system according to claim 1 or 2, characterized in that: The water outlet of the gas-liquid mixing system is divided into a first hydrogen-rich water path (B) and a second hydrogen-rich water path (C); the first hydrogen-rich water path (B) is connected to a first water inlet valve (8), and the second hydrogen-rich water path (C) is connected in series with a second water inlet valve (9) and a plasma resonance energy loader (7).
4. A high-energy, hydrogen-rich water electrolysis system according to claim 3, characterized in that: The first hydrogen-rich water path (B) and the second hydrogen-rich water path (C) are respectively provided with a pure hydrogen-rich water outlet (B1) and a high-energy hydrogen-rich water outlet (C1); the pure hydrogen-rich water outlet (B1) and the high-energy hydrogen-rich water outlet (C1) are respectively connected to two corresponding water outlet taps (10), or are connected to a single water outlet tap (10) through confluence.
5. A high-energy, hydrogen-rich water electrolysis system according to claim 1, characterized in that: The plasma resonance energy loader (7) comprises a metal shell (71), the metal shell (71) being provided with a pure hydrogen-rich water inlet (701) and a high-energy hydrogen-rich water outlet (702) connected to a second hydrogen-rich water path (C), and the inner cavity of the metal shell (71) accommodating one or more nano-coil groups (72) along the water flow direction.
6. A high-energy, hydrogen-rich water electrolysis system according to claim 5, characterized in that: The nanocoil group (72) comprises an inner coil (721), a middle coil (722) and an outer coil (723), wherein the inner coil (721), the middle coil (722) and the outer coil (723) are respectively wound in a spiral shape with different coil diameters, and the middle coil (722) and the inner coil (721) are sequentially arranged in series in the outer coil (723) along the coil axis of the outer coil (723).
7. A high-energy, hydrogen-rich water electrolysis system according to claim 1, characterized in that: The hydrogen production system (2) includes a water supply pump (11) and an electrolytic cell (12) for electrolyzing water to produce hydrogen. The water inlet of the water supply pump (11) is connected to a water supply source, and the water outlet of the water supply pump (11) is connected to the electrolytic cell (12). The electrolytic cell (12) is provided with an air outlet, and the air outlet is connected to the water production waterway (A) through a hydrogen discharge pipe (13).
8. A high-energy, hydrogen-rich water electrolysis system according to claim 7, characterized in that: The hydrogen production system (2) further comprises a water storage tank (14), the water outlet of the water storage tank (14) being connected to the water inlet of the water supply pump (11), the water inlet of the water storage tank (14) being connected to the water supply source or the water outlet of the RO membrane machine (1), and the water storage tank (14) being further provided with a hydrogen production water recovery port, the hydrogen production water recovery port being connected to the circulation drainage port of the electrolyzer (12).
9. A high-energy, hydrogen-rich water electrolysis system according to claim 7, characterized in that: The hydrogen exhaust pipe (13) is also connected to a one-way valve (15).
10. The high-energy, hydrogen-rich water electrolysis system according to claim 2, characterized in that: The hydrogen-rich water cutting head (6) comprises a pipe cutting member (61), one end of the pipe cutting member (61) is provided with an inlet, and the other end is provided with an outlet, and the inner cavity of the pipe cutting member (61) is provided with a plurality of cutting plates (62) that intercept the inner cavity between the inlet and the outlet, and each cutting plate (62) is provided with a plurality of cutting holes (63).