High solubility hydrogen-rich water cup

By incorporating a porous nozzle and a high-pressure design within the hydrogen-rich water cup, the suspension time of hydrogen bubbles in the water is extended, increasing the contact area between hydrogen and water. This solves the problem of low hydrogen solubility and achieves both high solubility and uniform mixing.

CN117263353BActive Publication Date: 2026-01-20ZHONGGUI (BEIJING) CERTIFICATION CO LTD
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Patent Information

Application Number
CN202311265582.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-28
Publication Date
2026-01-20
Estimated Expiration
2043-09-28

AI Technical Summary

Technical Problem

In traditional hydrogen-rich water cups, hydrogen bubbles have low solubility in water, causing hydrogen to escape and making it impossible to effectively replenish hydrogen intake.

Method used

Multiple porous nozzles are set in the cup body, with the micropores arranged in opposite directions. Combined with the high pressure inside the cup body, the hydrogen bubbles are suspended in the water for a longer time through the micropores that open tangentially on the porous nozzles, thereby increasing the contact area between hydrogen and water.

Benefits of technology

It improves the solubility and uniform mixing of hydrogen in water, thereby increasing the hydrogen content in drinking water.

✦ Generated by Eureka AI based on patent content.

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    Figure CN117263353B_ABST
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Abstract

The application discloses a high-solubility hydrogen-rich water cup, which comprises a cup body, a hydrogen collecting assembly is arranged on the cup body, the hydrogen collecting assembly comprises a gas guide pipe and a gas collecting cavity, both ends of the gas guide pipe are arranged in the cup body and the gas collecting cavity respectively, a plurality of annular porous nozzles are arranged on the part of the gas guide pipe located in the cup body in a lead-through mode, a plurality of micro-holes in the same direction are arranged on the side wall of the porous nozzle along the tangential direction of the clockwise or counterclockwise direction, and the micro-holes arranged on at least two porous nozzles are arranged in opposite directions. The plurality of porous nozzles arranged in the application can separate the unit volume of hydrogen into small bubbles and discharge the small bubbles, which is beneficial to the dissolution of hydrogen in water.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of functional water cup, in particular to a hydrogen-rich water cup. BACKGROUND

[0002] The hydrogen-rich water cup is a device that can inject hydrogen into drinking water. When the user drinks the drinking water containing hydrogen, the effect of hydrogen intake can be achieved. Studies have shown that hydrogen has good effects on removing free radicals in the body, anti-aging, reducing blood pressure, and reducing blood sugar levels. Therefore, there is a demand for such water cups in the consumer market.

[0003] The traditional hydrogen-rich water cup mainly consists of a water cup body and a hydrogen production component. Hydrogen enters the drinking water from the hydrogen production component and begins to dissolve in the water. Since hydrogen bubbles have buoyancy, they cannot stay in the water for a long time, resulting in low solubility of hydrogen bubbles in water. A large amount of hydrogen escapes before drinking, making it difficult to achieve the purpose of supplementing hydrogen intake. Therefore, the improved hydrogen-rich water cup has great research value. SUMMARY

[0004] In view of the above problems, the purpose of the present application is to provide a high-concentration hydrogen-rich water cup. By adding multiple porous nozzles in the cup body, the solubility of hydrogen in water can be improved.

[0005] To achieve the above purpose, the present application provides a high-solubility hydrogen-rich water cup, which comprises a cup body, a hydrogen collection assembly arranged on the cup body, the hydrogen collection assembly comprising a gas guide pipe and a gas collection cavity for producing hydrogen, both ends of the gas guide pipe being arranged in the cup body and the gas collection cavity respectively, and the part of the gas guide pipe located in the cup body being provided with at least two annular porous nozzles, a plurality of micro-holes with consistent arrangement direction being arranged on the side wall of each porous nozzle in the tangential direction of the clockwise or counterclockwise direction, and the micro-holes arranged on at least two porous nozzles being arranged in reverse.

[0006] Further, the end of the gas guide pipe located in the gas collection cavity is detachably provided with a hydrogen collection cover for collecting hydrogen.

[0007] Further, the hydrogen collection cover is made of elastic material.

[0008] Further, a sleeve for bundling the hydrogen collection cover is slidably arranged on the gas guide pipe, and a control rod for pushing the sleeve is arranged on the sleeve.

[0009] Further, the control rod is accommodated in the gas collection cavity.

[0010] Alternatively, one end of the control rod penetrates out of the gas collection cavity, and a rubber ring is arranged at the connection part of the control rod and the gas collection cavity to ensure the sealing of the control rod with the gas collection cavity when the control rod is pushed and pulled.

[0011] Optionally, one end of the gas collecting cavity is detachably provided with a cover body, and the other end is closed to realize the hydrogen production material feeding or pouring into the gas collecting cavity.

[0012] Further, the hydrogen production assembly is arranged in the gas collecting cavity, and the hydrogen production assembly produces hydrogen gas by one of electrolysis and hydrogen production agent.

[0013] Further, the cup body is detachably provided with a cup cover for sealing the cup body, and the cup cover is provided with a pressure relief valve for maintaining the pressure in the cup body.

[0014] Further, when the porous spray pipes are two, the diameter of the micropores arranged on the porous spray pipe far away from the gas inlet end of the gas guide pipe is 1.1-1.5 times, such as 1.2 or 1.3 times, of the diameter of the micropores arranged on the other porous spray pipe.

[0015] The beneficial effects of the present application are:

[0016] 1. By adding a plurality of porous spray pipes in the cup body, the unit volume of hydrogen gas can be separated into small bubbles and discharged, increasing the contact probability of hydrogen gas with water and the suspension time in water, which is beneficial to the dissolution of hydrogen gas in water.

[0017] 2. By the micropores on the porous spray pipe opening in the tangential direction, the hydrogen bubbles can drive the water flow to rotate when being sprayed, and the micropores in different directions can make the directions of the nearby water flow different, so as to realize the stirring of the drinking water, which is beneficial to the uniform mixing of hydrogen gas and drinking water, and can further improve the hydrogen content in the drinking water. BRIEF DESCRIPTION OF DRAWINGS

[0018] The accompanying drawings illustrate exemplary embodiments of the present application and, together with the general description of the application given above, and the detailed description of the embodiments given below, serve to explain the principles of the present application. The drawings are included herewith and constitute a part of the specification.

[0019] Figure 1 It is a structure schematic diagram of the hydrogen-rich water cup in Example 1.

[0020] Figure 2 It is a structure schematic diagram of the hydrogen-rich water cup in Example 2.

[0021] Figure 3 It is a structure schematic diagram of the hydrogen-rich water cup in Example 3.

[0022] Figure 4 It is a structure schematic diagram of the hydrogen-rich water cup in Example 4.

[0023] Figure 5 It is a top view schematic diagram of the porous spray pipe in Examples 1-4. DETAILED DESCRIPTION

[0024] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are for illustrative purposes only and are not intended to limit the scope of the invention. It should be noted that, for ease of description, only the parts relevant to the present invention are shown in the accompanying drawings.

[0025] It should also be noted that, unless otherwise specified, the embodiments and features described in the present invention can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0026] Example 1

[0027] Please refer to Figure 1 and Figure 5 The high-solubility hydrogen-rich water cup of this embodiment includes a cup body 1, which has an open top. A lid 12 is detachably and sealably installed at the opening via threads or snaps. The lid 12 is equipped with a pressure relief valve 13 to maintain the pressure inside the cup body 1 under sealed conditions. This valve releases the pressure inside the cup body 1 when it reaches a set threshold, ensuring the safety of the cup body 1. Maintaining a relatively high pressure inside the cup body 1 also improves the solubility of hydrogen in drinking water. A hydrogen collection assembly 2 is located on one side of the cup body 1, which can also be used as a handle. The hydrogen collection assembly 2 includes a gas guide tube 3 and a gas collection chamber 4. The two ends of the gas guide tube 3 are respectively placed inside the cup body 1 and the gas collection chamber 4. A sealing gasket is provided at the connection between the gas guide tube 3 and the gas collection chamber 4 and the cup body 1 to ensure that the cup body 1 and the gas collection chamber 4 are sealed relative to the outside. The portion of the gas guide tube 3 located within the cup body 1 is equipped with multiple annular porous nozzles 5. In this embodiment, one porous nozzle 5 is provided at the upper and one at the lower part of the gas guide tube 3. The upper porous nozzle 5 has multiple micropores 6, which can separate hydrogen gas per unit volume into a greater number of tiny hydrogen bubbles, increasing the contact area between hydrogen gas and water per unit volume and thus improving the solubility of hydrogen gas in water. The opening direction of the micropores 6 faces the clockwise tangential direction of the porous nozzle 5. The lower porous nozzle 5 also has multiple micropores 6, with their opening directions facing the counterclockwise tangential direction. When multiple porous nozzles 5 are provided, at least two of the porous nozzles 5 have micropores 6 arranged in opposite directions. Based on this, the diameter of the micro-holes 6 on the lower part of the porous nozzle 5 is 1.1-1.5 times the diameter of the micro-holes 6 on the upper part of the porous nozzle 5. When a large number of hydrogen bubbles are ejected from the two porous nozzles 5, the total volume of hydrogen bubbles ejected from the upper and lower parts can be kept equal. At the same time, the upper part of the water flow rotates clockwise and the lower part of the water flow rotates counterclockwise, which can achieve uniform agitation of the water flow and increase the retention time of hydrogen bubbles in drinking water. In addition, with the high pressure inside the cup body 1 after the cup lid 12 is sealed, the solubility of hydrogen in drinking water can be greatly increased.

[0028] refer toFigure 1 One end of the gas collecting cavity 4 is detachably provided with a cover 10, and the other end is closed to realize the pouring or pouring of hydrogen production materials into the gas collecting cavity 4. One end of the gas collecting cavity 4 is detachably provided with a hydrogen collecting cover 7 for high-efficiency collection of hydrogen. The hydrogen collecting cover 7 is made of elastic material, and in this embodiment, rubber material is selected. The gas pipe 3 is slidably provided with a sleeve 8 for collecting the hydrogen collecting cover 7. The sleeve 8 is provided with a control rod 9 for pushing. One end of the control rod 9 penetrates the gas collecting cavity 4 and is sealingly connected to the outer wall of the gas collecting cavity 4 through a rubber tube. The control rod 9 can slide in the rubber tube to realize the up and down movement of the sleeve 8 by pushing and pulling the control rod 9 to complete the collection and release of the hydrogen collecting cover 7. When the hydrogen collecting cover 7 is in the collection state, the cover 10 is unscrewed, and the hydrogen production materials can be conveniently cleaned or poured into the gas collecting cavity 4.

[0029] Embodiment 2

[0030] Please refer to Figure 2 and Figure 5 The high-solubility hydrogen-rich water cup of the embodiment includes a cup body 1, which is an open structure at the upper end. The opening is sealingly provided with a cup cover 12 by threads or buckles. The cup cover 12 is provided with a pressure relief valve 13 for maintaining the pressure in the cup body 1 under sealing to ensure that the pressure in the cup body 1 is released when the pressure reaches a set threshold to ensure the safety of the cup body 1. At the same time, keeping the cup body 1 under relatively high pressure can improve the solubility of hydrogen in drinking water. The cup body 1 is provided with a hydrogen collecting assembly, which includes a gas pipe 3 and a gas collecting cavity 4. The two ends of the gas pipe 3 are respectively placed in the cup body 1 and the gas collecting cavity 4. The gas pipe 3 is provided with a sealing gasket at the connection with the gas collecting cavity 4 and the cup body 1 to ensure the pressure in the cup body 1 when the cup cover 12 is closed. The part of the gas pipe 3 located in the cup body 1 is provided with a plurality of annular porous nozzles 5. In this embodiment, one porous nozzle 5 is provided at the upper and lower parts of the gas pipe 3, respectively. The upper part of the porous nozzle 5 is provided with a plurality of micro-holes 6, and the opening direction of the micro-holes 6 is towards the clockwise tangent direction of the porous nozzle 5. The lower part of the porous nozzle is provided with a plurality of micro-holes 6, and the opening direction of the micro-holes 6 is towards the counterclockwise tangent direction of the porous nozzle 5. When a plurality of porous nozzles 5 are provided, the micro-holes 6 on at least two porous nozzles 5 are reversely arranged. On this basis, the diameter of the micro-holes 6 on the upper part of the porous nozzle 5 is 1.1-1.5 times that of the micro-holes 6 on the lower part of the porous nozzle 5. When a large amount of hydrogen bubbles are sprayed from the two porous nozzles 5, the total volume of the upper and lower hydrogen bubbles can be ensured to be equivalent, and at the same time, the upper part of the water flow rotates clockwise and the lower part of the water flow rotates counterclockwise, which can realize uniform agitation of the water flow and increase the retention time of hydrogen bubbles in the drinking water. At the same time, the high pressure in the cup body 1 after the cup cover 12 is sealed can greatly increase the hydrogen content in the drinking water.

[0031] Reference Figure 2 The high-solubility hydrogen-rich water cup of the embodiment comprises, from bottom to top, a hydrogen production assembly 11, a gas collection cavity 4, and a cup body 1, which are sequentially and detachably connected. One end of the gas guide pipe 3 located in the gas collection cavity 4 is detachably provided with a hydrogen collection cover 7 for efficiently collecting hydrogen. An opening (not shown in the figure) is provided between the gas collection cavity 4 and the hydrogen production assembly 11, and a waterproof air-permeable film is provided at the opening. The gas collection cavity 4 is in gas communication with the hydrogen production assembly 11 through the waterproof air-permeable film. In this non-limiting embodiment, the hydrogen production assembly 11 generates hydrogen by electrolysis, and the hydrogen enters the gas collection cavity 4 through the waterproof air-permeable film.

[0032] Embodiment 3

[0033] Reference Figure 3 and Figure 5 The high-solubility hydrogen-rich water cup of the embodiment comprises a cup body 1, which is open at the upper end and is provided with a cup cover 12 at the opening through thread or buckle disassembly sealing. A pressure relief valve 13 is provided on the cup cover 12 to maintain the pressure in the cup body 1 under a sealed state, so as to release the pressure in the cup body 1 when the pressure reaches a set threshold value, thereby ensuring the safety of the cup body 1. At the same time, maintaining a relatively high pressure in the cup body 1 can improve the solubility of hydrogen in drinking water. The inside of the cup body 1 is provided with a hydrogen collection assembly 2, which comprises a gas guide pipe 3 and a gas collection cavity 4. The two ends of the gas guide pipe 3 are respectively located in the cup body 1 and the gas collection cavity 4, and a sealing gasket is provided at the connection between the gas guide pipe 3 and the gas collection cavity 4 to ensure that the cup body 1 and the gas collection cavity 4 are physically isolated. The part of the gas guide pipe 3 located in the cup body 1 is provided with a plurality of annular porous nozzles 5. In this embodiment, one porous nozzle 5 is provided at the upper and lower parts of the gas guide pipe 3, respectively. The upper porous nozzle 5 is provided with a plurality of micro-holes 6. The micro-holes 6 can divide the hydrogen in a unit volume into a larger number of small hydrogen bubbles, which can increase the contact area of hydrogen in a unit volume with water, thereby improving the solubility of hydrogen in water. The opening direction of the micro-holes 6 is along the clockwise tangent direction of the porous nozzle 5. The lower porous nozzle 5 is provided with a plurality of micro-holes 6, and the opening direction of the micro-holes 6 is along the counterclockwise tangent direction of the porous nozzle 5. When a plurality of porous nozzles 5 are provided, the micro-holes 6 on at least two porous nozzles 5 are arranged in opposite directions. On this basis, the diameter of the micro-holes 6 on the lower porous nozzle 5 is 1.1-1.5 times the diameter of the micro-holes 6 on the upper porous nozzle 5. When a large number of hydrogen bubbles are sprayed from the two porous nozzles 5, it can be ensured that the total volume of the upper and lower hydrogen bubbles sprayed is equivalent. At the same time, the upper water flow rotates clockwise and the lower water flow rotates counterclockwise, which can realize uniform stirring of the water flow, increase the retention time of hydrogen bubbles in drinking water, and, in combination with the high pressure in the cup body 1 after sealing of the cup cover 12, can greatly increase the solubility of hydrogen in drinking water.

[0034] With reference to Figure 3 One end of the gas collecting cavity 4 is detachably provided with a cover 10, and the other end is closed to realize the hydrogen production material being put into or taken out of the gas collecting cavity 4. One end of the gas guide pipe 3 located in the gas collecting cavity 4 is detachably provided with a hydrogen collecting cover 7 for high-efficiency collection of hydrogen. The hydrogen collecting cover 7 is made of elastic material, and in the embodiment, rubber material is selected. The gas guide pipe 3 is slidingly provided with a sleeve 8 for collecting the hydrogen collecting cover 7. The sleeve 8 is provided with a control rod 9 for pushing the sleeve 8. One end of the control rod 9 penetrates out of the gas collecting cavity 4 and is sealingly connected with the cover 10 through a rubber pipe. The control rod 9 can slide in the rubber pipe to realize the sleeve 8 being driven by the control rod 9 to move up and down, so as to complete the collection and release of the hydrogen collecting cover 7. When the hydrogen collecting cover 7 is in the collected state, the cover 10 is unscrewed, so that the hydrogen production material can be conveniently cleaned or put into the gas collecting cavity 4.

[0035] Embodiment 4

[0036] Please refer to Figure 4 and Figure 5The high-solubility hydrogen-rich water cup of the embodiment comprises a cup body 1, which is open at the upper end and provided with a cup cover 12 at the opening through thread or buckle for detachable sealing. The cup cover 12 is provided with a pressure relief valve 13 for maintaining the pressure in the cup body 1 in a sealed state, so as to release the pressure in the cup body 1 when the pressure reaches a set threshold, thereby ensuring the safety of the cup body 1. At the same time, the relatively high pressure in the cup body 1 can improve the solubility of hydrogen in drinking water. The inside of the cup body 1 is provided with a hydrogen collection assembly 2, which comprises a gas guide pipe 3 and a gas collection cavity 4. The two ends of the gas guide pipe 3 are respectively arranged in the cup body 1 and the gas collection cavity 4, and a sealing gasket is arranged at the connection between the gas guide pipe 3 and the gas collection cavity 4 to ensure that the cup body 1 and the gas collection cavity 4 are sealed and isolated. The part of the gas guide pipe 3 located in the cup body 1 is provided with a plurality of annular porous nozzles 5. In this embodiment, one porous nozzle 5 is arranged at the upper and lower parts of the gas guide pipe 3 respectively. The upper porous nozzle 5 is provided with a plurality of micro-holes 6. The micro-holes 6 can separate the hydrogen in a unit volume into a larger number of small hydrogen bubbles, which can increase the contact area of hydrogen in a unit volume with water, thereby improving the solubility of hydrogen in water. The opening direction of the micro-holes 6 is arranged along the clockwise tangent direction of the porous nozzle 5. The lower porous nozzle 5 is provided with a plurality of micro-holes 6, and the opening direction of the micro-holes 6 is arranged along the counterclockwise tangent direction of the porous nozzle 5. When a plurality of porous nozzles 5 are arranged, the micro-holes 6 arranged on at least two porous nozzles 5 are arranged in opposite directions. On this basis, the diameter of the micro-holes 6 on the lower porous nozzle 5 is 1.2 times the diameter of the micro-holes 6 arranged on the upper porous nozzle 5. When a large number of hydrogen bubbles are sprayed from the two porous nozzles 5, the total volume of the upper and lower hydrogen bubble sprays can be ensured to be equivalent. At the same time, the upper water flow rotates clockwise and the lower water flow rotates counterclockwise, which can realize uniform stirring of the water flow, increase the retention time of hydrogen bubbles in the drinking water, and cooperate with the high pressure in the cup body 1 after sealing by the cup cover 12 to greatly increase the solubility of hydrogen in drinking water.

[0037] Reference Figure 4 One end of the gas collection cavity 4 is detachably provided with a cover 10, and the other end is closed to realize the putting or taking out of the hydrogen production material in the gas collection cavity 4. The end of the gas guide pipe 3 located in the gas collection cavity 4 is detachably provided with a hydrogen collection cover 7 for efficient collection of hydrogen. The hydrogen collection cover 7 is made of elastic material, and in this embodiment, rubber material is selected. The gas guide pipe 3 is slidably provided with a sleeve 8 for collecting the hydrogen collection cover 7. The sleeve 8 is provided with a control rod 9 for pushing it, and the control rod 9 is accommodated in the inside of the gas collection cavity 4. When it is necessary to clean the hydrogen production material or put the hydrogen production material into the gas collection cavity 4, the cover 10 is detached, the sleeve 8 is moved up and down by pushing and pulling the control rod 9, the hydrogen collection cover 7 is collected and released, and the hydrogen production material is conveniently processed. At the same time, the structure is simpler, and the sealing performance of the gas collection cavity 4 is further improved.

[0038] Those skilled in the art will understand that the above-described embodiments are merely intended to clarify the present application and are not intended to limit the scope of the present application. Other changes or modifications can be made to the above-described application by those skilled in the art, and such changes or modifications are still within the scope of the present application.

Claims

1. A high solubility hydrogen-rich water cup, characterized by, The device includes a cup body, on which a hydrogen collection assembly is provided. The hydrogen collection assembly includes a gas guide tube and a gas collection chamber. The two ends of the gas guide tube are respectively placed in the cup body and the gas collection chamber. The portion of the gas guide tube located inside the cup body is provided with at least two annular porous nozzles. Each porous nozzle has multiple micro-holes on its sidewall along its clockwise or counterclockwise tangent direction. At least two of the porous nozzles have micro-holes arranged in opposite directions. The gas guide pipe is detachably equipped with a hydrogen collection cover for collecting hydrogen at one end located in the gas collection chamber; the gas collection chamber is equipped with a hydrogen production component, which produces hydrogen by electrolysis or hydrogen production using a hydrogen production agent.

2. The high solubility hydrogen-rich water cup of claim 1, wherein, The hydrogen collection hood is made of an elastic material.

3. The high-solubility hydrogen-rich water cup according to claim 2, characterized in that, A sleeve for converging the hydrogen collection hood is slidably disposed on the gas guide pipe, and a control rod for pushing the sleeve is disposed on the sleeve.

4. The high-solubility hydrogen-rich water cup according to claim 3, characterized in that, The control lever is housed within the gas collection chamber.

5. The high-solubility hydrogen-rich water cup according to claim 3, characterized in that, One end of the control rod extends out of the gas collection chamber, and a rubber ring is provided at the connection between the control rod and the gas collection chamber to ensure that the control rod is sealed with the gas collection chamber when pushed or pulled.

6. The high-solubility hydrogen-rich water cup according to claim 3, characterized in that, One end of the gas collection chamber is detachably covered, while the other end is closed, so as to allow the hydrogen production material to be added to or removed from the gas collection chamber.

7. The high-solubility hydrogen-rich water cup according to any one of claims 1-6, characterized in that, The cup body is detachably equipped with a cup lid for sealing, and the cup lid is equipped with a pressure relief valve for maintaining the pressure inside the cup body.

8. The high-solubility hydrogen-rich water cup according to claim 1, characterized in that, When there are two porous nozzles, the diameter of the micro-holes on the porous nozzle farther from the air inlet end of the air guide pipe is 1.1-1.5 times the diameter of the micro-holes on the other porous nozzle.

Citation Information

Patent Citations

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  • Hydrogen cup capable of physically dissolving hydrogen

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