Physical hydrogen mixing device for hydrogen-rich water cup

By incorporating a base and a breathable diaphragm within the hydrogen-rich water cup, the problems of electrolytic cell contamination and heating are resolved, achieving water cleanliness and temperature control, and ensuring pure and suitable water quality.

CN223950798UActive Publication Date: 2026-02-27TIANJIN SUNSHINE NEW LINE TECH DEV CO LTD
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Patent Information

Application Number
CN202520206388.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-10
Publication Date
2026-02-27
Estimated Expiration
2035-02-10

AI Technical Summary

Technical Problem

In existing hydrogen-rich water cups, hydrogen gas and its derivatives generated at the anode of the electrolyzer are directly mixed into the water, causing water pollution, and the electrolyzer heats up, causing the water temperature to rise.

Method used

A physical hydrogen mixing device for a hydrogen-rich water cup is designed. By setting a base between the cup body and the cup seat, a breathable membrane is used to separate hydrogen from water, allowing only hydrogen to enter the cup body through the breathable membrane and mix with water, thus avoiding the entry of derivative products and heat into the water.

Benefits of technology

It achieves the cleanliness and temperature control of the water inside the cup, avoiding contamination from the heat and byproducts of the electrolytic cell, and ensuring the purity and suitable temperature of the water.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a hydrogen-rich water cup physical hydrogen mixing device which comprises a base body, a butt joint opening is formed in the top of the base body, a connecting base is arranged at the bottom of the base body, an installation cavity is formed in the base body, a breathable diaphragm capable of allowing gas to pass through and blocking water is arranged in the installation cavity, the installation cavity is communicated with the connecting base and the butt joint opening, and the butt joint opening is detachably connected with the bottom of a cup body. The connecting base is detachably connected with the cup base, water is stored in an inner cavity of the connecting base, after the connecting base is connected with the cup base, the water automatically flows into the cup base, and breathable partition plates are arranged on the upper side and the lower side of the breathable diaphragm. When the electrolytic bath cup is used, the cup body and the cup base can be separated by the arranged base body, so that heat of the electrolytic bath can be prevented from being directly transferred into the cup body; moreover, the water in the connecting seat and the electrolytic bath are subjected to electrolytic reaction, only hydrogen penetrates through the breathable diaphragm to enter the cup body to be mixed with the water in the process, and derivative products on the anode of the electrolytic bath cannot enter the water, so that the water in the cup body is kept clean.
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Description

TECHNICAL FIELD

[0001] The utility model relates to hydrogen -rich seat technical field, specifically is a kind of hydrogen-rich water cup physical hydrogen mixing device. BACKGROUND

[0002] ‌Hydrogen-rich water cup is a kind of ordinary water is converted into hydrogen-rich water cup by electrolytic technology, as shown in Figure Figure 6 Hydrogen-rich water cup includes cup body 1 and cup seat 6 connected with cup body 1, electrolytic cell is equipped in cup seat 6.The core principle of this water cup is to decompose ordinary drinking water into hydrogen-rich water by electrolysis, when using, hydrogen is generated from the anode of electrolytic cell and directly mixed into the water in cup body, so that water is rich in hydrogen.‌

[0003] This water cup will have a drawback, that is, the anode of electrolytic cell will not only produce hydrogen, but also produce byproducts, such as non-metallic elements and metal elements, etc., these elements will directly mix into water, which has certain pollution to the water in cup body; moreover, electrolytic cell will heat when working, and the heat generated will also directly mix into water, so that the water in cup is heated. For this reason, we propose a kind of hydrogen-rich water cup physical hydrogen mixing device. CONTENT OF UTILITY MODEL

[0004] In view of the deficiency that the water in the cup body of the existing hydrogen-rich water cup directly contacts with the electrolytic cell in the cup seat, resulting in the water in the cup body being polluted, the utility model provides a kind of hydrogen-rich water cup physical hydrogen mixing device, which has the advantages that the seat body separates the cup body from the cup seat, and only hydrogen gas can flow into the cup body, solving the problems raised in the above background technology.

[0005] The technical scheme of the utility model is realized as follows: a kind of hydrogen-rich water cup physical hydrogen mixing device is designed, including seat body, the top of seat body is equipped with docking interface, bottom is equipped with connecting seat, seat body is equipped with installation cavity, installation cavity is equipped with gas-permeable diaphragm that can let gas pass and can block water, installation cavity is communicated with connecting seat and docking interface respectively, docking interface is detachably connected with the bottom of cup body, connecting seat is detachably connected with cup seat, and water is stored in the inner cavity of connecting seat, when connecting seat is connected with cup seat, water automatically flows into cup seat.

[0006] Preferably, the upper and lower sides of the gas-permeable diaphragm are provided with gas-permeable partitions, and the edges of the gas-permeable partitions are located in the installation cavity.

[0007] Preferably, a step is provided between the installation cavity and the docking interface, and the edges of the gas-permeable partitions and the gas-permeable diaphragm are placed on the step surface, and the edges of the gas-permeable partitions and the gas-permeable diaphragm are installed on the step surface by fasteners.

[0008] Preferably, a water storage chamber is provided below the installation cavity, and the upper and lower ends of the water storage chamber are communicated with the installation cavity and the connecting seat respectively.

[0009] Preferably, the interface inner surface and the connecting seat outer surface are provided with threads.

[0010] Preferably, the air-permeable partition is a metal sheet with holes on the surface.

[0011] Compared with the prior art, the cup body and the cup seat can be separated by the seat body in use, direct heat transfer from the electrolytic cell to the cup body can be avoided, water in the connecting seat reacts with the electrolytic cell, only hydrogen gas can pass through the air-permeable diaphragm into the cup body to mix with the water, and the by-products on the anode of the electrolytic cell cannot enter the water, so that the water in the cup body remains clean. BRIEF DESCRIPTION OF DRAWINGS

[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or prior art description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor on the basis of these drawings.

[0013] Figure 1 The structure diagram of the seat body, the cup body and the cup seat in the present application.

[0014] Figure 2 The cross-sectional view of the seat body, the cup body and the cup seat in the present application Figure 1 .

[0015] Figure 3 The cross-sectional view of the seat body, the cup body and the cup seat in the present application Figure 2 .

[0016] Figure 4 The structure diagram of the cup body after being inverted in the present application.

[0017] Figure 5 The structure diagram of the seat body in the present application.

[0018] Figure 6 The structure diagram of the existing hydrogen-rich water cup.

[0019] In the drawing: cup body 1, butt joint seat 2, butt joint 3, seat body 4, butt joint 5, cup seat 6, mounting cavity 7, air-permeable partition 8, air-permeable diaphragm 9, water storage chamber 10, connecting seat 11, electrolytic cell 12. DETAILED DESCRIPTION

[0020] The technical scheme of the utility model will be described below in clear and complete manner in conjunction with the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by the ordinary skilled in the art without creative labor belong to the scope of protection of the utility model.

[0021] Referring to Figures 1 to 5 The utility model provides a kind of technical scheme: a kind of hydrogen-rich water cup physical hydrogen mixing device, including seat body 4, seat body 4 top is equipped with docking interface 3, the bottom of seat body 4 is equipped with connecting seat 11. Among them, docking interface 3 is detachably connected with the bottom of cup body 1, connecting seat 11 is detachably connected with cup seat 6;

[0022] It should be noted that, as Figure 4 Indicated, existing hydrogen-rich water cup includes cup body 1 and cup seat 6 two parts, of course, also includes cup cover being set at cup body 1 top.When installing, the docking seat 2 of cup body 1 bottom and the docking interface 5 of cup seat 6 top are screwed together. Figure 4 Indicated, water can be filled in the anode of electrolytic cell 12 in cup seat 6, so that the hydrogen generated on the anode is dissolved into cup body 1, and the hydrogen is dissolved in the water in cup body 1;

[0023] The seat body 4 in the application is installed between the cup body 1 and the cup seat 6, that is, the inner surface of the docking interface 3 and the outer surface of the connecting seat 11 are provided with threads. When installing, the docking seat 2 is threadedly connected in the docking interface 3, and the connecting seat 11 is threadedly connected in the docking interface 5, so that the seat body 4 can be stably arranged between the cup body 1 and the cup seat 6.

[0024] Then, the mounting cavity 7 is provided in the seat body 4, and the mounting cavity 7 is in communication with the connecting seat 11 and the docking interface 3 respectively. The gas-permeable diaphragm 9 that allows gas to pass through and blocks water is provided in the mounting cavity 7. The gas-permeable diaphragm 9 is specifically a selective semi-permeable membrane, and the semi-permeable membrane can only pass gas but not water. Therefore, when the seat body 4 is installed between the cup body 1 and the cup seat 6, the water in the cup body 1 is only left above the gas-permeable diaphragm 9, but the hydrogen generated by the electrolytic cell 12 can flow into the cup through the gas-permeable diaphragm 9.

[0025] Specifically, water is stored in the inner cavity of the connecting seat 11. When the connecting seat 11 is connected with the cup seat 6, the water automatically flows into the cup seat 6, that is, the water flows onto the anode. However, in order to further increase the water storage space of the connecting seat 11, as Figure 3 Indicated, the water storage chamber 10 in communication with the connecting seat 11 is provided below the mounting cavity 7, and the top of the water storage chamber 10 is also in communication with the mounting cavity 7, so that the water storage chamber 10 and the connecting seat 11 store water together, further increasing the volume of the stored water.

[0026] The cup body 1 and the cup seat 6 can be separated, avoiding the heat generated by the electrolysis of the electrolytic cell 12 in the cup seat 6 directly transferring to the cup body 1;

[0027] Secondly, the water in the connecting seat 11 reacts with the electrolysis of the electrolytic cell 12, and this process only allows hydrogen to pass through the gas-permeable diaphragm 9 into the cup body 1 to mix with the water, and the by-products on the anode of the electrolytic cell 12, such as halogen and other non-metallic elements, will not enter the water, and these by-products will not mix into the cup body 1, making the water in the cup body 1 cleaner;

[0028] Finally, after storing electrolytic water in the water storage chamber 10 and the connecting seat 11, the electrolysis time is at least 4 hours or more, which not only avoids the mixing of electrolysis water and water in the cup body, but also prolongs the electrolysis time, and only allows hydrogen to pass through the gas-permeable diaphragm 9 into the cup to mix with the water, and the hydrogen gas passing through the gas-permeable diaphragm 9 is dispersed into small gas bubbles, and the relative area of these small bubbles and water is large, so the hydrogen gas passing through the gas-permeable diaphragm 9 can better mix with the water.

[0029] Further, the upper and lower sides of the gas-permeable diaphragm 9 are provided with support structures, which make the gas-permeable diaphragm 9 more firm and less likely to deform, that is, the upper and lower sides of the gas-permeable diaphragm 9 are provided with gas-permeable partitions 8, the edges of the gas-permeable partitions 8 are located in the mounting cavity 7, the gas-permeable partitions 8 are metal sheets with holes on the surface, such as titanium metal sheets, and the gas-permeable partitions 8 can support the gas-permeable diaphragm 9 without affecting the gas permeability of the gas-permeable diaphragm 9;

[0030] The gas-permeable partitions 8 and the gas-permeable diaphragm 9 are stacked together, and the edges of the gas-permeable partitions 8 and the gas-permeable diaphragm 9 are sealingly arranged in the mounting cavity 7, so that the edges of the gas-permeable partitions 8 and the gas-permeable diaphragm 9 have sufficient sealing performance.

[0031] Further, the application also considers the installation of the gas-permeable partitions 8 and the gas-permeable diaphragm 9. That is, a step is arranged between the mounting cavity 7 and the butt joint 3, that is, the inner diameter of the mounting cavity 7 is smaller than the inner diameter of the butt joint 3. During installation, the edges of the gas-permeable partitions 8 and the gas-permeable diaphragm 9 are placed on the step surface, and then the edges of the gas-permeable partitions 8 and the gas-permeable diaphragm 9 are mounted on the step surface by fasteners. Specifically, mounting holes are provided on the edges of the gas-permeable partitions 8 and the gas-permeable diaphragm 9, and screw holes corresponding to the mounting holes are provided on the step surface. The fastener is a bolt or screw placed in the mounting hole. The bolt or screw is fixed in the screw hole, which facilitates the assembly of the gas-permeable partitions 8 and the gas-permeable diaphragm 9.

[0032] Based on the above embodiment, the seat body 4 can be further optimized to be transparent, so that the air outlet of the air permeable diaphragm 9 can be directly observed, and the volume of the electrolytic water in the water storage chamber 10 can also be directly observed. When the electrolytic water is about to be used up, the cup seat 6 can be unscrewed, and the cup body can be inverted (as shown in Figure 4 It should be noted that the liquid level should not overflow the connecting seat 11, and finally the cup seat 6 is screwed on the connecting seat 11.

[0033] Based on the above embodiment, it should be further pointed out that in order to increase the air tightness of the edges of the air permeable partition plate 8 and the air permeable diaphragm 9, a silica gel gasket can be arranged between them and the edge of the air permeable partition plate 8.

[0034] The above only describes the preferred embodiments of the present application, and is not intended to limit the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.

Claims

1. A hydrogen-rich water cup physical hydrogen mixing device, comprising a seat body (4), characterized in that, The seat body (4) is provided with a connecting interface (3) at the top and a connecting seat (11) at the bottom. The seat body (4) is provided with an installation cavity (7) therein, and the installation cavity (7) is provided with a gas-permeable diaphragm (9) that allows gas to pass through and blocks water, and the installation cavity (7) is in communication with the connecting seat (11) and the connecting interface (3) respectively. The connecting interface (3) is detachably connected to the bottom of the cup body (1), the connecting seat (11) is detachably connected to the cup seat (6), and the inner cavity of the connecting seat (11) stores water, which automatically flows into the cup seat (6) when the connecting seat (11) is connected to the cup seat (6).

2. The hydrogen-rich water cup physical hydrogen mixing device according to claim 1, wherein The gas-permeable diaphragm (9) is provided with gas-permeable diaphragm plates (8) on the upper and lower sides, and the edges of the gas-permeable diaphragm plates (8) are located in the installation cavity (7).

3. The hydrogen-rich water cup physical hydrogen mixing device according to claim 2, wherein The installation cavity (7) and the connecting interface (3) are arranged in steps; The edges of the gas-permeable diaphragm plates (8) and the gas-permeable diaphragm (9) are arranged on the surface of the steps, and the edges of the gas-permeable diaphragm plates (8) and the gas-permeable diaphragm (9) are mounted on the surface of the steps by fasteners.

4. The hydrogen-rich water cup physical hydrogen mixing device according to claim 3, wherein The installation cavity (7) is provided with a water storage chamber (10) below, and the upper and lower ends of the water storage chamber (10) are in communication with the installation cavity (7) and the connecting seat (11) respectively.

5. The hydrogen-rich water cup physical hydrogen mixing device of claim 1, wherein, The inner surface of the connecting interface (3) and the outer surface of the connecting seat (11) are provided with threads.

6. The hydrogen-rich water cup physical hydrogen mixing device of claim 3, wherein, The gas-permeable diaphragm plates (8) are metal sheets with holes on the surface.