Humidity adjusting system and air humidity adjusting device

By incorporating a humidification module, a hydrogen production module, and a hydrogen mixing module into the humidity control system, the problem of uneven atomization in existing hydrogen-rich humidifiers has been solved, enabling the regulation of air humidity and hydrogen content without water mist, thus improving the humidity control effect.

CN224033924UActive Publication Date: 2026-03-24FOSHAN XINYAO ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-21
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

The existing atomization method of hydrogen-rich humidifiers results in concentrated, small and uneven water mist, and has a limited impact on relative humidity.

Method used

A humidity control system is adopted, including a humidification module, a hydrogen production module, and a hydrogen mixing module. It increases air humidity and hydrogen content in a water-free manner. Hydrogen gas generated by an electrolyzer is mixed with water, and combined with an ejector and a hydrogen mixer, uniform humidity control is achieved.

Benefits of technology

It achieves uniform regulation of air humidity and hydrogen content, avoids water mist generation, and improves humidity regulation effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the field of gas humidity control, and particularly discloses a humidity adjusting system and an air humidity adjusting device, water in a first water tank is guided by a first water pump to pass through a humidification module, a hydrogen production module and a hydrogen mixing module, so that hydrogen-rich water is guided into a humidification filter screen, and the air humidity is adjusted under the driving of a fan. And the amount of hydrogen in the air is increased. The moisture content and the hydrogen content in the air are fully increased in a water-mist-free humidifying mode, and water mist is avoided.
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Description

TECHNICAL FIELD

[0001] The application belongs to the field of gas humidity control, and particularly relates to a humidity adjusting system and an air humidity adjusting device. BACKGROUND

[0002] With the increasing improvement of people's living standards, the demand for improving the quality of life is also increasing, so the health industry is also constantly innovating, and hydrogen-rich products are concerned in the health industry due to their antioxidant effect. At present, there are relatively primary hydrogen-rich humidifiers in the field of humidification, but the existing products are more to atomize hydrogen-rich water through ultrasonic vibration, which can cause the water mist to be concentrated, the range to be small and uneven, and adjacent objects to be obviously sticky with water droplets, and there are many problems such as limited influence on relative humidity. Therefore, it is necessary to develop a new type of humidity adjusting system and air humidity adjusting device which can adjust humidity and make air hydrogen-rich. CONTENT OF THE INVENTION

[0003] The purpose of the present application is to solve the problems of the prior art, and to provide a humidity adjusting system and an air humidity adjusting device, which specifically adopt the following technical solutions:

[0004] On the one hand, the present application provides a humidity adjusting system, characterized in that the humidity adjusting system comprises a humidifying module, a hydrogen production module and a hydrogen mixing module; the humidifying module, the hydrogen production module and the hydrogen mixing module are connected through pipelines; the humidifying module comprises a first water tank, a humidifying filter screen and a fan; the hydrogen production module comprises an electrolytic cell, the electrolytic cell is provided with a third exhaust hole, and the electrolytic cell delivers hydrogen to the hydrogen mixing module through the third exhaust hole; the hydrogen mixing module comprises a jet device and a hydrogen mixer; and the hydrogen mixing module is connected to the humidifying module through a pipeline.

[0005] As some sub-solutions of the above technical solutions, the first water pump inlet end is connected to the first water tank; the humidity adjusting system further comprises a water making module, the water making module comprises a second electromagnetic valve, a filter element and a second water tank, and is connected in sequence through a pipeline; one end of the second electromagnetic valve is connected to the first water pump through a pipeline.

[0006] As some sub-solutions of the above technical solutions, the second water tank comprises a second floating ball, an ultraviolet generating module, a second water tank drain hole and a first exhaust hole.

[0007] As some sub-solutions of the above technical solutions, in the water making module, a TDS meter is further arranged on the pipeline connecting the filter element and the second water tank.

[0008] As some sub-solutions of the above technical solutions, the first water tank further comprises a first floating ball and an antibacterial module.

[0009] As some sub-solutions of the above technical solution, the electrolytic cell also includes a second vent, a second water pump, and an electrolysis device. The electrolysis device can electrolyze water into hydrogen and oxygen. The second vent can discharge the oxygen generated by the electrolysis device through a pipeline. The second water pump inputs water from the second water tank into the electrolytic cell through a pipeline.

[0010] As some sub-solutions of the above technical solution, the inlet end of the ejector is connected to the first solenoid valve and the electrolytic cell respectively through pipelines, the ejector is connected to the third exhaust port, and the connecting pipeline is also equipped with a first flow meter; the outlet end of the ejector is connected to the hydrogen mixer and the check valve in sequence, and then connected to the humidification module through pipelines.

[0011] As some sub-solutions of the above technical solution, the first solenoid valve is a three-way valve, including an inlet end and two outlet ends. The inlet end is connected to the first water pump, and the outlet ends include a first outlet end and a second outlet end. The first outlet end is connected to the ejector; the second outlet end merges into the outlet end pipeline of the check valve.

[0012] Secondly, this utility model also provides a humidity control system that adds a one-way valve and a dehumidification module to the above-mentioned humidity control system. The inlet end of the one-way valve is connected to the outlet end of the dehumidification module, and the outlet end of the one-way valve is connected to the filter element.

[0013] Thirdly, this utility model also provides an air humidity regulating device that includes the above-mentioned humidity regulating system.

[0014] The beneficial effect of this application is that by using a water-mist-free humidification method, the moisture and hydrogen content in the air are fully increased, thus avoiding the generation of water mist. Attached Figure Description

[0015] Fig. 1 The diagram shown is a schematic of the humidity control system provided in Example 1;

[0016] Fig. 2 The diagram shown is a schematic of the humidity control system provided in Example 2;

[0017] Legend: 101 First water tank; 102 First float; 103 Antibacterial module; 104 Humidifying filter; 105 Fan;

[0018] 201 First water pump; 202 First solenoid valve; 203 Second solenoid valve; 204 Filter element; 205 TDS meter; 206 Second water tank; 207 Second float; 208 Ultraviolet generator module; 209 Second water tank drain hole; 210 First vent hole; 211 Second water pump; 212 Electrolytic cell; 213 Second vent hole; 214 Third vent hole; 215 First flow meter;

[0019] 216 Ejector; 217 Hydrogen mixer; 218 Check valve; 219 One-way valve; 220 Dehumidification module. Detailed Implementation

[0020] 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.

[0021] 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.

[0022] 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.

[0023] 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.

[0024] The following is combined Figs. 1-2 The embodiments of this application are described below.

[0025] Example 1

[0026] This utility model provides a humidity control system, including a humidification module, a hydrogen production module, and a hydrogen mixing module; the humidification module, the hydrogen production module, and the hydrogen mixing module are connected by pipelines; the humidification module includes a first water tank 101, a humidification filter 104, and a fan 105; the hydrogen production module includes an electrolyzer 212, which is provided with a third exhaust port 214, through which hydrogen is supplied to the hydrogen mixing module; the hydrogen mixing module includes an ejector 216 and a hydrogen mixer 217; the hydrogen mixing module is connected to the humidification module by pipelines.

[0027] As some sub-solutions of the above technical solution, it also includes a first water pump 201 whose inlet end is connected to a first water tank; the humidity regulation system also includes a water production module, which includes a second solenoid valve 203, a filter element 204 and a second water tank 206, and is connected in sequence through pipelines; one end of the second solenoid valve 203 is connected to the first water pump 201 through a pipeline.

[0028] In this embodiment, the second water tank 206 includes a second float 207, an ultraviolet generation module 208, a second water tank drain hole 209, and a first vent hole 210.

[0029] In this embodiment, the water production module is also equipped with a TDS meter 205 on the pipeline connecting the filter element 204 and the second water tank 206 to detect the water quality provided by the filter element 204.

[0030] In this embodiment, the first water tank 101 also includes a first float 102 and an antibacterial module 103.

[0031] In this embodiment, the electrolytic cell 212 further includes a second vent 213, a second water pump 211, and an electrolysis device. The electrolysis device can electrolyze water into hydrogen and oxygen. The second vent can discharge the oxygen generated by the electrolysis device through a pipeline. The second water pump 211 inputs water from the second water tank into the electrolytic cell through a pipeline.

[0032] The inlet end of the ejector 216 is connected to the first solenoid valve 202 and the electrolytic cell 212 respectively through pipelines. The ejector 216 is connected to the third exhaust port 214, and a first flow meter 215 is also provided on the connecting pipeline. The outlet end of the ejector 216 is connected to the hydrogen mixer 217 and the check valve 218 in sequence, and then connected to the humidification module through pipelines.

[0033] The first solenoid valve 202 is a three-way valve, including an inlet end and two outlet ends. The inlet end is connected to the first water pump 201, and the outlet ends include a first outlet end and a second outlet end. The first outlet end is connected to the ejector 216; the second outlet end is connected to the outlet end pipeline of the check valve 218.

[0034] In this embodiment, the humidifying filter is selected as an antibacterial humidifying filter with antibacterial function.

[0035] The humidity control system provided in this embodiment has two operating modes: (1) conventional humidification mode and (2) hydrogen-rich humidification mode.

[0036] (1) When operating in normal humidification mode:

[0037] The first water pump 201 and the fan 105 are started. At the same time, the first solenoid valve 202 is adjusted by the valve switch to directly guide the water output by the first water pump 201 to the humidifying filter 104, thereby making the humidifying filter 104 humid. At this time, the fan 105 blows out clean air from the humidifying filter 104, creating a negative pressure in the humidifying filter 104. External air is drawn into the humidifying filter 104 and then blown out by the fan 105, increasing the humidity as it passes through the humidifying filter 104. Meanwhile, the water passing through the humidifying filter 104 flows back to the first water tank 101 by gravity.

[0038] (2) When operating in hydrogen-rich humidification mode:

[0039] The first water pump 201 and the blower 105 are started. The first solenoid valve 202 is adjusted to guide the water ejected by the first water pump 201 to the ejector 216. The second solenoid valve 203 is opened. At this time, one of the water streams flows directly to the ejector 216, and after being mixed evenly with hydrogen in the hydrogen mixer 217, it is introduced into the humidifying filter 104, making the humidifying filter 104 humid. At this time, the blower 105 blows out clean air from the humidifying filter 104, creating a negative pressure in the humidifying filter 104. External air is drawn into the humidifying filter 104 and then blown out by the blower 105. The humidity is increased when passing through the humidifying filter 104. At the same time, the water passing through the humidifying filter 104 flows back to the first water tank 101 by gravity.

[0040] Another stream of water, purified by filter element 204, enters the pure water tank. A diaphragm pump, acting as a second pump 211, delivers the pure water to the electrolytic cell 212. After electrolysis, the generated oxygen is discharged through the second vent 213, and hydrogen is discharged through the third vent 214. Hydrogen is then drawn into the ejector 216 via the first flow meter 215 and subsequently mixed with water in the hydrogen mixer 217. When the second float 207 in the second water tank 216 is at a high water level, the second solenoid valve 203 closes, stopping water production; when the second float 207 in the second water tank 216 is at a low water level, water production resumes normally.

[0041] Furthermore, the hydrogen-rich humidification mode also has two off modes:

[0042] When the TDS meter 205 detects a value exceeding the set value, the system stops producing water and hydrogen, switches to normal humidification mode, and prompts the user to replace filter 204.

[0043] When the hydrogen flow rate through the flow meter reaches the set maximum value Q within the system's set time T, the system stops producing hydrogen and switches to the conventional humidification mode for humidification.

[0044] Example 2

[0045] This utility model also provides a humidity control system based on Embodiment 1, which includes a one-way valve 219 and a dehumidification module 220. The inlet end of the one-way valve 219 is connected to the outlet end of the dehumidification module 220, and the outlet end of the one-way valve 219 is connected to the filter element 204.

[0046] The humidification system in this embodiment adds a dehumidification mode on the basis of embodiment 1: the dehumidification module 202 absorbs the moisture in the air and enters the filter element 204 through the one-way valve 219, and finally flows into the second water tank 206.

[0047] This utility model also provides an air humidity regulating device that includes the above-mentioned humidity regulating system.

[0048] Although the description of this application has been quite detailed and particularly focused on several of the described embodiments, it is not intended to limit itself to any of these details or embodiments or any particular embodiment. Rather, it should be considered as providing a broad possible interpretation of the claims by referring to the appended claims and taking into account the prior art, thereby effectively covering the intended scope of this application. Furthermore, the foregoing description of this application with respect to embodiments foreseeable by the applicant is intended to provide a useful description, and non-substantial modifications to this application that have not yet been foreseen may still represent equivalent modifications.

Claims

1. A humidity control system, characterized in that, The humidity control system includes a humidification module, a hydrogen production module, and a hydrogen mixing module; the humidification module includes a first water tank (101), a humidification filter (104), and a fan (105); the hydrogen production module includes an electrolyzer (212), which is provided with a third exhaust port (214), through which hydrogen is supplied to the hydrogen mixing module; the hydrogen mixing module includes an ejector (216) and a hydrogen mixer (217); the hydrogen mixing module is connected to the humidification module through a pipeline.

2. The humidity control system according to claim 1, characterized in that, It also includes a first water pump (201) whose inlet end is connected to a first water tank; the humidity control system also includes a water production module, which includes a second solenoid valve (203), a filter element (204), and a second water tank (206), and is connected in sequence through a pipeline; one end of the second solenoid valve (203) is connected to the first water pump (201) through a pipeline.

3. The humidity control system according to claim 2, characterized in that, The second water tank (206) includes a second float (207), an ultraviolet generation module (208), a second water tank drain hole (209), and a first vent hole (210).

4. A humidity control system according to claim 2, characterized in that, In the water production module, a TDS meter (205) is also installed on the pipeline connecting the filter element (204) and the second water tank (206).

5. A humidity control system according to claim 1, characterized in that, The first water tank (101) also includes a first float (102) and an antibacterial module (103).

6. A humidity control system according to claim 2, characterized in that, The electrolytic cell (212) also includes a second vent (213), a second water pump (211), and an electrolysis device. The electrolysis device can electrolyze water into hydrogen and oxygen. The second vent can discharge the oxygen generated by the electrolysis device through a pipeline. The second water pump (211) inputs water from the second water tank into the electrolytic cell through a pipeline.

7. A humidity control system according to claim 1, characterized in that, The inlet end of the ejector (216) is connected to the first solenoid valve (202) and the electrolytic cell (212) respectively through pipelines. The ejector (216) is connected to the third exhaust port (214), and a first flow meter (215) is also provided on the connecting pipeline. The outlet end of the ejector (216) is connected to the hydrogen mixer (217) and the check valve (218) in sequence, and then connected to the humidification module through pipelines.

8. A humidity control system according to claim 7, characterized in that, The first solenoid valve (202) is a three-way valve, including an inlet end and two outlet ends. The inlet end is connected to the first water pump (201), and the outlet ends include a first outlet end and a second outlet end. The first outlet end is connected to the ejector (216); the second outlet end is connected to the outlet end pipeline of the check valve (218).

9. A humidity control system, characterized in that, The humidity control system according to any one of claims 1-8 further includes a one-way valve (219) and a dehumidification module (220), wherein the inlet end of the one-way valve (219) is connected to the outlet end of the dehumidification module (220), and the outlet end of the one-way valve (219) is connected to the filter element (204).

10. An air humidity regulating device, characterized in that, Includes the humidity control system described in any one of claims 1-8 or claim 9.