Hydrogen-rich water production system and water production and humidification all-in-one machine
By optimizing the hydrogen production, water production, and air humidification systems of the hydrogen-rich water production system, the problems of low water production and uneven mixing were solved, achieving a multi-functional effect of efficient hydrogen-rich water production and air humidification.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN XINYAO ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
- Filing Date
- 2024-12-21
- Publication Date
- 2026-05-15
AI Technical Summary
Existing hydrogen-rich water production systems suffer from low water production capacity, uneven mixing of hydrogen and water, and insufficient integration. They also have limited functionality and cannot meet the diverse needs of users.
A hydrogen-rich water production system was designed, including a hydrogen production system, a water production system, a mixing system, and an air humidification system. Hydrogen is produced through an electrolyzer, and pure water and mineral water are produced using RO composite filter cartridges and mineralization filter cartridges. The water is then mixed through an ejector and a hydrogen mixer, and humidified by the air humidification system, thus achieving multi-functional utilization of water.
It achieves excellent water production and uniform mixing of hydrogen and water, and has a variety of functions, providing dual functions of producing hydrogen-rich water and humidifying the air to meet the diverse needs of users.
Smart Images

Figure CN224242879U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of humidity control device technology, and in particular to a hydrogen-rich water production system and an integrated water production and humidification machine. Background Technology
[0002] As people's living standards improve, the health and wellness industry is booming, and hydrogen-rich products are attracting significant attention due to their antioxidant properties. However, current hydrogen-rich water production systems in health and wellness products often suffer from low water production capacity, uneven hydrogen-water mixing, and insufficient integration. Furthermore, their simple functionality often fails to meet the diverse needs of users.
[0003] Therefore, it is necessary to develop a new type of hydrogen-rich water production system and an integrated water production and humidification machine to solve the various existing problems. Utility Model Content
[0004] This utility model aims to solve at least one of the technical problems mentioned above.
[0005] The solution to the technical problem of this utility model is:
[0006] On the one hand, this utility model provides a hydrogen-rich water production system, including a hydrogen production system, a water production system, a mixing system and an air humidification system; the hydrogen production system includes an electrolyzer; the water production system includes a first filter element and a second filter element; the hydrogen production system includes an electrolyzer and a fourth exhaust port; the mixing system includes an ejector, a third water pump and a hydrogen mixer; the air humidification system includes a humidification filter, a fan, a fourth water pump and a fifth water pump.
[0007] As some of the sub-solutions of the above technical solution, the hydrogen production system also includes a third filter element and a third water tank.
[0008] As some sub-solutions of the above technical solution, the third water tank includes a first vent and a second vent; the electrolytic cell includes a third vent and a fourth vent; the first vent is connected to the first water tank; the second vent communicates with the third vent; and the fourth vent communicates with the jet injector.
[0009] As a sub-solution of the above technical solution, the third water tank is also equipped with an ultraviolet device and a drain hole.
[0010] As some sub-solutions of the above technical solution, the water production system also includes a first water tank, a first water pump, a first valve, a second valve, a float connector, and a second water tank.
[0011] As some sub-solutions of the above technical solution, the water purification system also includes an overflow sterilization device, a first TDS meter, a second TDS meter, and a sensor; the first TDS meter is located between the first water tank and the first water pump; the second TDS meter is located between the outlet end of the second filter element and the inlet end of the second water tank.
[0012] As a sub-solution of the above technical solution, the first water tank is also equipped with a float, a baffle, and a check valve.
[0013] As some sub-solutions of the above technical solution, a wastewater plug is provided between the third water pump and the hydrogen mixer; the hydrogen-rich water production system is also provided with a third valve, the inlet end of the third valve is connected to the inlet end of the ejector, and the outlet end of the third valve is connected to the outlet end of the hydrogen mixer.
[0014] As some sub-solutions of the above technical solution, the hydrogen-rich water production system is also equipped with a second water pump, the outlet of which is connected to the inlet of the third valve; the hydrogen-rich water production system is also equipped with a flow meter, which is used to measure the flow rate at the outlet of the hydrogen mixer.
[0015] On the other hand, this utility model also provides a water production and humidification integrated machine that includes the above-mentioned hydrogen-rich water production system.
[0016] Technical effects:
[0017] This invention optimizes the hydrogen production system, water production system, and mixing system, resulting in excellent water production and uniform mixing of hydrogen and water. It also enriches the functions, enabling a single system to both produce hydrogen-rich water and humidify the air, providing users with more diverse functionalities. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly explained below. Obviously, the described drawings are only a part of the embodiments of this utility model, and not all of them. Those skilled in the art can obtain other design schemes and drawings based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the hydrogen-rich water production system provided by this utility model;
[0020] In the attached diagram: 101 First water tank; 102 First TDS meter; 103 First water pump; 104 First valve; 105 First filter element; 106 Second filter element; 107 Second valve; 108 Flow sterilization device; 109 Second TDS meter; 110 Temperature sensor; 111 Second water tank; 112 Float connector; 113 Second water pump; 114 Third valve; 115 Ejector; 116 Third water pump; 117 Wastewater plug; 118 Hydrogen mixer; 119 Flow meter
[0021] 201 Third filter element; 202 Third water tank; 203 Electrolytic cell; 204 First vent; 205 Second vent; 206 Third vent; 207 Fourth vent;
[0022] 301 Humidifying filter; 302 Fan; 303 Fourth water pump; 304 Fifth water pump. Detailed Implementation
[0023] The embodiments of this utility model are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0024] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are 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.
[0025] In the description of this utility model, "several" means an indefinite quantity, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, the quantity of indicated technical features, or the order of the indicated technical features. The use of "and / or" throughout the text indicates three parallel solutions; for example, A and / or B indicates a solution satisfied by A, a solution satisfied by B, or a solution satisfied by both A and B.
[0026] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0027] First, this utility model provides a hydrogen-rich water production system, including a hydrogen production system, a water production system, a mixing system, and an air humidification system; the hydrogen production system includes an electrolyzer 203; the water production system includes a first filter element 105 and a second filter element 106; the hydrogen production system includes an electrolyzer 203 and a fourth exhaust port 207; the mixing system includes an ejector 115, a third water pump 116, and a hydrogen mixer 118; the air humidification system includes a humidifying filter 301, a fan 302, a fourth water pump 303, and a fifth water pump 304.
[0028] The hydrogen production system produces hydrogen by electrolyzing water using an electrolyzer 203. The water production system produces pure water by filtration. In this embodiment, the water production system uses a first filter element 105 (RO composite filter element) to produce pure water, and then uses a second filter element 106 (mineralization filter element) to mineralize the pure water to obtain mineral water. Subsequently, the mineral water is mixed with hydrogen through an ejector 115, a third water pump 116, and a hydrogen mixer 118 in the mixing system, and finally introduced into the health pot.
[0029] The air humidification system uses the fourth water pump 303 and the fifth water pump 304 to deliver water through matching pipelines to the humidification filter 301. The humidification filter 301 increases the contact between air and water, and the air blown out by the fan 302 carries away the moisture from the filter, thereby increasing the water content in the air and humidifying the surrounding air without fog.
[0030] In this specific embodiment, the water and gas paths between the components of the hydrogen-rich water production system are connected by rigid pipes when necessary; in some other embodiments, other connection methods, including direct connection and flexible hose connection, may also be used.
[0031] In this specific embodiment, the hydrogen production system also includes a third filter element 201 and a third water tank 202; the third water tank 202 is also equipped with an ultraviolet device and a drain hole.
[0032] In this specific embodiment, the third filter element 201 is a resin filter element to ensure that the subsequent electrolyzed water is pure and free of impurities, and to prevent the minerals in the mineralized filter element from affecting the electrolysis reaction. The third water tank 202 provides water for the subsequent electrolysis cell 203 and is connected to the electrolysis cell 203 by a rigid pipe to ensure that the electrolysis cell 203 has enough water for electrolysis. At the same time, the bottom of the third water tank 202 is also equipped with an ultraviolet device and a drain hole. The ultraviolet device inhibits the microorganisms in the water tank by releasing ultraviolet rays, so as to avoid the water from having odors and impurities. The drain hole is used to facilitate the discharge of wastewater during subsequent maintenance.
[0033] In this specific embodiment, the third water tank 202 includes a first vent 204 and a second vent 205; the electrolytic cell 203 includes a third vent 206 and a fourth vent 207; the first vent 204 is connected to the first water tank 101; the second vent 205 communicates with the third vent 206; and the fourth vent 207 communicates with the jet injector 115.
[0034] In the third water tank 202, the first vent 204 is connected to the top of the first water tank 101 via a pipeline to balance the gas pressure. At the same time, the second vent 205 and the third vent 206 are connected via a pipeline, which allows the oxygen generated in the electrolysis process in the electrolyzer 203 to be discharged into the third water tank 202 through the third vent 206 and finally introduced into the first water tank 101 through the first vent 204. Meanwhile, the hydrogen generated in the electrolyzer 203 is delivered to the ejector 115 through the fourth vent 207 to facilitate subsequent mixing with the water production system.
[0035] In this specific embodiment, the water production system further includes a first water tank 101, a first water pump 103, a first valve 104, a second valve 107, a float connector 112, and a second water tank 111; the first water tank 101 is also provided with a float, a baffle, and a check valve; the water production system further includes an overflow sterilization device 108, a first TDS meter 102, a second TDS meter 109, and a sensor 110; the first TDS meter 102 is located between the first water tank 101 and the first water pump 103; the second TDS meter 109 is located between the outlet end of the second filter element 106 and the inlet end of the second water tank 111.
[0036] The first water tank 101 serves as the raw water tank, storing the water needed for subsequent systems. It is equipped with a float to indicate the remaining water level and a partition to separate a wastewater storage space. The first water pump 103 acts as a booster pump, delivering water from the first water tank 101 to the first filter element 105. The first valve 104 acts as a wastewater solenoid valve, returning the wastewater generated during the water purification process of the first filter element 105 to the wastewater storage space in the first water tank 101. The second valve 107, in this embodiment, is a three-way valve used for interconnecting the various systems. The solenoid valve is specifically a one-inlet, two-outlet solenoid valve; the liquid inlet end is connected to the outlet of the second filter element 106 through a pipeline, one of the two outlet ends is connected to the inlet of the third filter element 201 through a pipeline, and the other outlet end is connected in sequence to the flow sterilization device 108, the second TDS meter 109 and the sensor 110 to input water into the second water tank 111, and then the second water tank 111 inputs water into the ejector through the second water pump 113; the first TDS meter is used to detect the water quality in the first water tank 101, and the second TDS meter 109 is used to detect the mineral water that has passed through the flow sterilization device 108.
[0037] Meanwhile, the top of the first water tank 101 is also equipped with an air humidification system, which specifically includes a humidification filter 301 located on the top of the first water tank 101, a fan 302 for mixing the high humidity air in the humidification filter 301 with the surrounding air; a fourth water pump 303 and its supporting pipeline for conveying water in the second water tank 111 to the humidification filter 301, and a fifth water pump 304 and its supporting pipeline for conveying hydrogen-rich water in the pipeline behind the flow meter 119 to the humidification filter.
[0038] In this specific embodiment, a wastewater plug 117 is provided between the third water pump 116 and the hydrogen mixer 118; the hydrogen-rich water production system is also provided with a third valve 114, the inlet end of the third valve 114 is connected to the inlet end of the ejector 115, and the outlet end of the third valve 114 is connected to the outlet end of the hydrogen mixer 118.
[0039] This specific embodiment takes into account the situation where only pure water needs to be output. The water inlet of the ejector 115 and the water outlet of the hydrogen mixer 118 are connected through the third valve 114 and its matching pipeline. Thus, when pure water is needed, the electrolytic cell 203 can be directly closed and the third valve 114 can be opened, so that the water in the second water tank 111 can be directly pumped out by the second water pump 113, bypassing the ejector 115, the third water pump 116 and the hydrogen mixer 118.
[0040] A wastewater plug 117 is also provided on the pipeline between the third water pump 116 and the hydrogen mixer 118. The wastewater plug 117 is used to open it during maintenance to facilitate the discharge of wastewater.
[0041] In this specific embodiment, the hydrogen-rich water production system is further provided with a second water pump 113, the outlet of which is connected to the inlet of the third valve 114; the hydrogen-rich water production system is also provided with a flow meter 119, which is used to measure the flow rate at the outlet of the hydrogen mixer 118.
[0042] In this specific embodiment, the outlet end of the flow meter 119 is connected to the kettle via a pipeline.
[0043] In this specific embodiment, when the above-mentioned hydrogen-rich water production system enters the following operating conditions, the various components will also cooperate accordingly:
[0044] When the first filter element 105 and the second filter element 106 are venting: the first water pump 103 is turned on, the first valve 104 is closed, the inlet end of the second valve 107 is opened, the outlet end leading to the third filter element 201 is closed, the outlet end leading to the flow sterilization device 108 is opened, the second water pump 113 is turned off, the third water pump 116 is turned off, and the third valve 114 is closed. When water finally flows into the kettle, it indicates that the first filter element 105 and the second filter element 106 have completed venting.
[0045] When the second water tank 111 is replenished: the float of the float connector 112 is at a low water level, the first water pump 103 starts to work, the first water pump 103 is turned on, the first valve 104 is closed, the inlet end of the second valve 107 is opened, the outlet end leading to the third filter element 201 is closed, and the outlet end leading to the flow sterilization device 108 is opened, thus replenishing the second water tank 111.
[0046] When the third water tank 202 is replenished: the float in the third water tank 202 drops to the water level, the electrolysis cell 203 stops working, the first water pump 103 turns on, the first valve 104 turns off, the inlet end of the second valve 107 turns on, the outlet end leading to the third filter element 201 turns on, the outlet end leading to the flow sterilization device 108 turns off, the second water pump 113 turns off, the third water pump 116 turns off, and the third valve 114 turns off.
[0047] When hydrogen-rich water needs to be injected into the kettle: the electrolyzer 203 enters the working state, the second water pump 113 starts working after 3 seconds, the first water pump 103 is turned off, and then the third water pump 116 starts working after 3 seconds, and the third valve 114 is closed, so that hydrogen-rich water can be obtained flowing into the kettle.
[0048] When mineral water needs to be poured into the kettle: the first pump 103 is closed, the first valve 104 is closed, the second valve 107 is closed, the second pump 113 is opened, and the third valve 114 is opened, so that mineral water can flow into the kettle.
[0049] When the hydrogen-rich water humidification function is needed, the electrolyzer 203 enters the working state. After 3 seconds, the second water pump 113 starts working, the first water pump 103 shuts down, and then after 3 seconds, the third water pump 116 starts working, the third valve 114 closes, the fifth water pump 304 turns on, and the fan 302 turns on, so that hydrogen-rich water humidification can be performed.
[0050] When mineral water is needed for humidification, the first water pump 103 is closed, the first valve 104 is closed, the second valve 107 is closed, the fourth water pump 303 pumps water from the second water tank 111 into the humidification filter 301, and the fan 302 is turned on, thus enabling mineral water humidification.
[0051] On the other hand, this utility model also provides a water production and humidification integrated machine that includes the above-mentioned hydrogen-rich water production system.
[0052] The preferred embodiments of the present invention have been described in detail above. However, the present invention is not limited to the embodiments described. Those skilled in the art can make various equivalent modifications or substitutions without departing from the spirit of the present invention. All such equivalent modifications or substitutions are included within the scope defined by the claims of this application.
Claims
1. A hydrogen-rich water production system, characterized in that, The system includes a hydrogen production system, a water production system, a mixing system, and an air humidification system; the hydrogen production system includes an electrolyzer (203); the water production system includes a first filter element (105) and a second filter element (106); the hydrogen production system includes an electrolyzer (203) and a fourth exhaust port (207); the mixing system includes an ejector (115), a third water pump (116), and a hydrogen mixer (118); the air humidification system includes a humidification filter (301), a fan (302), a fourth water pump (303), and a fifth water pump (304).
2. The hydrogen-rich water production system according to claim 1, characterized in that, The hydrogen production system also includes a third filter element (201) and a third water tank (202).
3. The hydrogen-rich water production system according to claim 2, characterized in that, The third water tank (202) includes a first vent (204) and a second vent (205); the electrolytic cell (203) includes a third vent (206) and a fourth vent (207); the first vent (204) is connected to the first water tank (101); the second vent (205) communicates with the third vent (206); and the fourth vent (207) communicates with the jet injector (115).
4. The hydrogen-rich water production system according to claim 2, characterized in that, The third water tank (202) is also equipped with an ultraviolet device and a drain hole.
5. A hydrogen-rich water production system according to claim 1, characterized in that, The water production system also includes a first water tank (101), a first water pump (103), a first valve (104), a second valve (107), a float connector (112), and a second water tank (111).
6. The hydrogen-rich water production system according to claim 5, characterized in that, The water purification system also includes an overflow sterilization device (108), a first TDS meter (102), a second TDS meter (109), and a sensor (110); the first TDS meter (102) is located between the first water tank (101) and the first water pump (103); the second TDS meter (109) is located between the outlet end of the second filter element (106) and the inlet end of the second water tank (111).
7. A hydrogen-rich water production system according to claim 6, characterized in that, The first water tank (101) is also equipped with a float, a baffle and a check valve.
8. The hydrogen-rich water production system according to claim 1, characterized in that, A wastewater plug (117) is provided between the third water pump (116) and the hydrogen mixer (118); the hydrogen-rich water production system is also provided with a third valve (114), the inlet end of the third valve (114) is connected to the inlet end of the jet injector (115), and the outlet end of the third valve (114) is connected to the outlet end of the hydrogen mixer (118).
9. A hydrogen-rich water production system according to claim 8, characterized in that, The hydrogen-rich water production system is also equipped with a second water pump (113), the outlet of the second water pump is connected to the inlet of the third valve (114); the hydrogen-rich water production system is also equipped with a flow meter (119), the flow meter (119) is used to measure the flow rate at the outlet of the hydrogen mixer (118).
10. A water purification and humidification integrated machine, characterized in that, Includes the hydrogen-rich water production system according to any one of claims 1-9.