Air supply structure for intelligent breathing oxyhydrogen machine
By designing electrolytic components and slowly exposing components in the gas supply structure of the intelligent respiratory hydroxide machine, slowly exposing the ion membrane and enhancing the sealing effect, the problems of easy damage to the ion membrane and low hydrogen and oxygen utilization in the prior art are solved, and more efficient and stable hydrogen and oxygen generation are achieved.
Patent Information
- Application Number
- CN202421977642.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-15
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-15
AI Technical Summary
In the gas supply structure of existing intelligent respiratory hydroxide machines, the ion film is prone to physical damage due to external stress and impact, and the hydrogen and oxygen utilization rate is low.
An air supply structure for intelligent respiratory hydrogen and oxygen machine is designed, including an electrolytic assembly and a slow exposure assembly. The electrolytic component achieves slow exposure of the ion membrane through the combination of partitions, ion membranes, slide chutes, insert plates, bearing plates, hydraulics and hydraulic rods; the sealing component enhances the strength and sealing effect of the ion membrane through engineering plastic frames and U-shaped sealing rings.
Through the design of slowly exposed components, physical damage caused by rapid environmental changes is reduced, hydrogen and oxygen utilization is improved, and the stable operation of the equipment is ensured through enhanced sealing effect.
Smart Images

Figure CN222990228U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of intelligent breathing hydrogen-oxygen machines, in particular to a gas supply structure for an intelligent breathing hydrogen-oxygen machine. Background Technique
[0002] The gas supply structure of an intelligent breathing hydrogen-oxygen machine usually includes the following key parts: a gas generation unit, a gas separation and purification system, a pressure regulating device, a flow control unit, a gas mixing chamber, a conveying pipeline, and a breathing interface.
[0003] In the existing gas supply structure, the ion membrane is usually directly and completely exposed to the outside, which will cause excessive instantaneous stress and impact from the outside, easily resulting in physical damage to the ion membrane; and the utilization rate of hydrogen and oxygen in the existing gas supply structure is relatively low. Therefore, it is necessary to provide a gas supply structure that can protect the ion membrane and improve the generation of hydrogen and oxygen to protect the ion membrane while improving the utilization rate of hydrogen and oxygen. Content of the Utility Model
[0004] The purpose of the utility model is to provide a gas supply structure for an intelligent breathing hydrogen-oxygen machine to solve the problems raised in the above background technique, that is, in the existing gas supply structure, the ion membrane is usually directly and completely exposed to the outside, which will cause excessive instantaneous stress and impact from the outside, easily resulting in physical damage to the ion membrane; and the utilization rate of hydrogen and oxygen in the existing gas supply structure is relatively low.
[0005] To solve the above technical problems, the utility model is realized through the following technical solutions:
[0006] The utility model is a gas supply structure for an intelligent breathing hydrogen-oxygen machine, including:
[0007] An electrolysis component, the electrolysis component includes an electrolytic cell, an anode chamber, and a cathode chamber;
[0008] A slow exposure component, the slow exposure component includes a partition board, an ion membrane, a sliding groove, a plug board, a receiving board, a hydraulic device, and a hydraulic rod;
[0009] A partition board is installed in the middle of the electrolytic cell. The left side of the partition board is the anode chamber, and the right side of the partition board is the cathode chamber. The ion membrane is movably connected to the middle of the partition board. Two sliding grooves are opened on the partition board. The plug board is movably connected to the middle of the sliding groove. The top of the plug board is fixedly connected to the receiving board. The front of the electrolytic cell is fixedly connected to the hydraulic device. The top of the hydraulic device is fixedly connected to the hydraulic rod. The top of the hydraulic rod is fixedly connected to the receiving board.
[0010] Furthermore, the electrolysis component further includes a receiving rod, an electrolyzer, and electrolytic columns;
[0011] One end of the receiving rod is fixedly connected to the rear of the electrolytic cell, and the other end of the receiving rod is fixedly connected to the electrolyzer. Two electrolytic columns are fixedly connected to the bottom of the electrolyzer.
[0012] Further, the electrolysis assembly further includes a first gas-water separator, a second gas-water separator, a first connecting pipe, a second connecting pipe, and an exhaust pipe;
[0013] The first gas-water separator is provided on the left side of the electrolytic cell, the second gas-water separator is provided on the right side of the electrolytic cell, one end of the first connecting pipe is fixedly inserted through the side parts of the first gas-water separator and the second gas-water separator, the other end of the first connecting pipe is inserted through the anode chamber, one end of the second connecting pipe is fixedly inserted through the bottoms of the first gas-water separator and the second gas-water separator, and the other end of the second connecting pipe is fixedly inserted through the electrolytic cell.
[0014] Further, the slow exposure assembly further includes a limit groove;
[0015] Two limit grooves are opened on the bottom of the partition plate.
[0016] Further, a sealing assembly is further included;
[0017] The sealing assembly includes an engineering plastic frame;
[0018] The engineering plastic frame is provided in the middle of the partition plate, and the engineering plastic frame is fixedly installed on the outer circle of the ion membrane.
[0019] Further, the sealing assembly further includes a U-shaped sealing ring and a clamping groove;
[0020] The outer circle of the engineering plastic frame is fixedly connected with the U-shaped sealing ring, the clamping groove is opened on the inner wall of the partition plate, and the U-shaped sealing ring is movably installed in the clamping groove.
[0021] Compared with the prior art, the advantages of the present utility model are as follows:
[0022] In the present utility model, the provided oxygen and hydrogen preparation devices can achieve cyclic preparation, thereby improving the utilization rate of hydrogen and oxygen. At the same time, under the action of the hydraulic device, the insertion plate can move slowly upward, thereby realizing the slow exposure of the ion membrane. In this process, the instantaneous stress and impact can be reduced, and the physical damage of the ion membrane caused by rapid environmental changes can be reduced.
[0023] Based on the above beneficial effects, the engineering plastic frame installed on the outer side of the ion membrane improves the strength of the outer side of the ion membrane, and the setting of the U-shaped sealing ring enables a large contact stress to be generated when under pressure, enhancing the sealing effect of the ion membrane. When used in combination with the engineering plastic frame, it provides stable support for sealing and can prevent sealing failure caused by structural deformation during use. Description of the Drawings
[0024] To more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0025] Figure 1 Overall schematic diagram of the present utility model;
[0026] Figure 2 Schematic diagram of the connection of the plug board of the present utility model;
[0027] Figure 3 Sectional view of the partition board of the present utility model;
[0028] Figure 4 Schematic diagram of the connection of the engineering plastic frame and the U-shaped sealing ring of the present utility model;
[0029] Figure 5 For the present utility model Figure 4 Enlarged view of part A.
[0030] In the drawings, the list of components represented by each reference numeral is as follows:
[0031] 101, electrolytic cell; 102, anode chamber; 103, cathode chamber; 104, receiving rod; 105, electrolyzer; 106, electrolytic column; 107, first gas-water separator; 108, second gas-water separator; 109, first connecting pipe; 1010, second connecting pipe; 1011, exhaust pipe;
[0032] 201, partition board; 202, ion membrane; 203, chute; 204, plug board; 205, receiving board; 206, hydraulic device; 207, hydraulic rod; 208, limit groove;
[0033] 301, engineering plastic frame; 302, U-shaped sealing ring; 303, clamping groove. Specific embodiments
[0034] To make the above objects, features and advantages of the present utility model more obvious and understandable, the following will make a detailed description of the specific embodiments of the present utility model in conjunction with the drawings.
[0035] In the following description, many specific details are set forth in order to fully understand the present utility model. However, the present utility model can also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present utility model. Therefore, the present utility model is not limited by the specific embodiments disclosed below.
[0036] To make the objectives, technical solutions, and advantages of the present utility model clearer, the following will further describe the embodiments of the present utility model in detail with reference to the accompanying drawings.
[0037] Please refer to Figures 1-5 As shown, this embodiment is a gas supply structure for an intelligent breathing hydrogen-oxygen machine, including:
[0038] An electrolysis component, which includes an electrolytic cell 101, an anode chamber 102, and a cathode chamber 103;
[0039] A slow exposure component, which includes a partition plate 201, an ion membrane 202, a chute 203, a plug board 204, a receiving plate 205, a hydraulic device 206, and a hydraulic rod 207;
[0040] A partition plate 201 is installed in the middle of the electrolytic cell 101. The left side of the partition plate 201 is the anode chamber 102, and the right side of the partition plate 201 is the cathode chamber 103. An ion membrane 202 is movably connected to the middle of the partition plate 201. Two chutes 203 are opened on the partition plate 201. A plug board 204 is movably connected to the middle of the chute 203. The top of the plug board 204 is fixedly connected to the receiving plate 205. The front part of the electrolytic cell 101 is fixedly connected to the hydraulic device 206. The top of the hydraulic device 206 is fixedly connected to the hydraulic rod 207. The top of the hydraulic rod 207 is fixedly connected to the receiving plate 205;
[0041] The anode chamber 102 is used to separate hydrogen ions and oxygen. The cathode chamber 103 is used to generate hydrogen. The partition plate 201 is used to separate the electrolytic cell 101. The ion membrane 202 is used to perform an osmotic reaction on ions. The setting of the chute 203 provides a guarantee for the insertion of the plug board 204. The hydraulic device 206 and the hydraulic rod 207 are used in cooperation to provide kinetic energy for the up and down movement of the receiving plate 205 and the plug board 204;
[0042] The electrolysis component further includes a receiving rod 104, an electrolyzer 105, and an electrolytic column 106;
[0043] One end of the receiving rod 104 is fixedly connected to the rear part of the electrolytic cell 101, and the other end of the receiving rod 104 is fixedly connected to the electrolyzer 105. Two electrolytic columns 106 are fixedly connected to the bottom of the electrolyzer 105;
[0044] The receiving rod 104 plays a receiving role. The electrolyzer 105 and the electrolytic column 106 are used in cooperation to provide electrical energy for the electrolysis of water flow;
[0045] The electrolysis component further includes a first gas-water separator 107, a second gas-water separator 108, a first connecting pipe 109, a second connecting pipe 1010, and an exhaust pipe 1011;
[0046] A first gas-water separator 107 is provided on the left side of the electrolytic cell 101, and a second gas-water separator 108 is provided on the right side of the electrolytic cell 101. One end of a first connecting pipe 109 is fixedly inserted into the sides of the first gas-water separator 107 and the second gas-water separator 108, and the other end of the first connecting pipe 109 is inserted into the anode chamber 102. One end of a second connecting pipe 1010 is fixedly inserted into the bottom of the first gas-water separator 107 and the second gas-water separator 108, and the other end of the second connecting pipe 1010 is fixedly inserted into the electrolytic cell 101.
[0047] The first gas-water separator 107 and the second gas-water separator 108 separate and discharge oxygen and hydrogen under the action of gravity. The first connecting pipe 109 and the second connecting pipe 1010 play a receiving role, and the exhaust pipe 1011 is used to discharge oxygen and hydrogen.
[0048] The slow exposure assembly also includes a limit groove 208;
[0049] Two limiting grooves 208 are provided on the bottom of the partition 201;
[0050] The limiting groove 208 is used to limit the bottom of the plug board 204;
[0051] Also included is a sealing assembly;
[0052] The sealing assembly includes an engineering plastic frame 301;
[0053] An engineering plastic frame 301 is provided in the middle of the partition 201, and the engineering plastic frame 301 is fixedly installed on the outer ring of the ion membrane 202;
[0054] The material of the engineering plastic frame 301 itself has extremely high hardness, thereby ensuring the hardness of the outer ring of the ion membrane 202;
[0055] The sealing assembly also includes a U-shaped sealing ring 302 and a clamping groove 303;
[0056] The outer ring of the engineering plastic frame 301 is fixedly connected to the U-shaped sealing ring 302, and the inner wall of the partition 201 is provided with a slot 303, and the U-shaped sealing ring 302 is movably installed in the slot 303;
[0057] One side of the lip of the U-shaped sealing ring 302 is close to the ion membrane 202, which provides a guarantee for improving the sealing performance. The setting of the card slot 303 provides a guarantee for the installation and removal of the U-shaped sealing ring 302;
[0058] Working principle: Inject distilled water into the anode chamber 102 at the electrolytic cell 101. Turn on the electrolyzer 105, and the electrolytic column 106 is electrified for electrolysis. At this time, hydrogen ions and oxygen are generated. The oxygen is discharged from the anode chamber 102. The hydrogen ions, in the form of hydrated ions, enter the cathode under the action of the electric field force, form hydrogen after absorbing electrons, and then are discharged from the cathode chamber 103 and enter the second gas-water separator 108. Finally, the hydrogen is discharged through the exhaust pipe 1011. During the above electrolysis process, turn on the hydraulic device 206 to drive the hydraulic rod 207 to drive the receiving plate 205 to move slowly upward, thereby driving the insertion plate 204 to move upward along the slow chute 203, so as to realize the slow exposure of the ion membrane 202, the ion membrane 202.
[0059] This step improves the utilization rate of hydrogen and oxygen, and at the same time can realize the slow exposure of the ion membrane. During this process, the instantaneous stress and impact can be reduced, and the physical damage of the ion membrane caused by rapid environmental changes can be reduced.
[0060] In the description of the present invention, it should also be noted that, unless otherwise clearly specified and limited, the terms "set", "install", "connected", "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0061] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An intelligent breathing hydrogen oxygen machine air supply structure, characterized in that: include: An electrolytic component, the electrolytic component comprising an electrolytic cell (101), an anode chamber (102) and a cathode chamber (103); A slow exposure component, the slow exposure component comprising a partition (201), an ion membrane (202), a slide groove (203), a plug plate (204), a receiving plate (205), a hydraulic device (206), and a hydraulic rod (207); A partition (201) is installed in the middle of the electrolytic cell (101), the left side of the partition (201) is an anode chamber (102), the right side of the partition (201) is a cathode chamber (103), the middle of the partition (201) is movably connected to an ion membrane (202), two slide grooves (203) are provided on the partition (201), the middle of the slide groove (203) is movably connected to a plug plate (204), the top of the plug plate (204) is fixedly connected to a receiving plate (205), the front of the electrolytic cell (101) is fixedly connected to a hydraulic press (206), the top of the hydraulic press (206) is fixedly connected to a hydraulic rod (207), and the top of the hydraulic rod (207) is fixedly connected to the receiving plate (205).
2. According to claim 1, a gas supply structure for an intelligent breathing hydrogen-oxygen machine is characterized in that: The electrolysis assembly also includes a receiving rod (104), an electrolyzer (105) and an electrolysis column (106); The rear of the electrolytic cell (101) is fixedly connected to one end of a receiving rod (104), the other end of the receiving rod (104) is fixedly connected to an electrolyzer (105), and the bottom of the electrolyzer (105) is fixedly connected to two electrolytic columns (106).
3. According to claim 1, the air supply structure for an intelligent breathing hydrogen-oxygen machine is characterized in that: The electrolysis assembly further comprises a first gas-water separator (107), a second gas-water separator (108), a first connecting pipe (109), a second connecting pipe (1010) and an exhaust pipe (1011); A first gas-water separator (107) is provided on the left side of the electrolytic cell (101), and a second gas-water separator (108) is provided on the right side of the electrolytic cell (101); one end of a first connecting tube (109) is fixedly inserted into the sides of the first gas-water separator (107) and the second gas-water separator (108), and the other end of the first connecting tube (109) is inserted into the anode chamber (102); one end of a second connecting tube (1010) is fixedly inserted into the bottoms of the first gas-water separator (107) and the second gas-water separator (108), and the other end of the second connecting tube (1010) is fixedly inserted into the electrolytic cell (101).
4. According to claim 1, the intelligent breathing hydrogen oxygen machine air supply structure is characterized in that: The slow exposure component also includes a limiting groove (208); Two limiting grooves (208) are provided on the bottom of the partition (201).
5. According to claim 1, the intelligent breathing hydrogen oxygen machine air supply structure is characterized in that: Also included is a sealing assembly; The sealing component comprises an engineering plastic frame (301); An engineering plastic frame (301) is provided in the middle of the partition (201), and the engineering plastic frame (301) is fixedly mounted on the outer ring of the ion membrane (202).
6. The intelligent breathing hydrogen-oxygen machine air supply structure according to claim 5 is characterized in that: The sealing assembly further comprises a U-shaped sealing ring (302) and a clamping groove (303); The outer ring of the engineering plastic frame (301) is fixedly connected to the U-shaped sealing ring (302), and the inner wall of the partition plate (201) is provided with a slot (303), and the U-shaped sealing ring (302) is movably mounted in the slot (303).