Super-saturated hydrogen water preparation device

By designing a conveniently disassembled slide and limit block structure and hydrogen dissolution controlled by the compressed air pump, the problem of blockage of the double-layer pore filter plate is solved, and efficient cleaning of the hydrogen water preparation device and the production of high-quality hydrogen water are achieved.

CN223225891UActive Publication Date: 2025-08-15JINKAI INSTR DALIAN CO LTD
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Patent Information

Application Number
CN202422486404.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-08-15
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

In the existing hydrogen water preparation device, the double-layer pore filter plate is difficult to disassemble and clean easily, resulting in pore blockage after long-term use that affects the preparation effect.

Method used

A supersaturated hydrogen water preparation device is designed, which facilitates the rapid disassembly of the double-layer pore filter plate through the sliding structure of the slide plate and the limiting block. It is equipped with a compressed air pump to control the contact time and pressure between hydrogen and water, ensures that the hydrogen is fully dissolved, and a stainless steel storage tube is used to maintain the stability of hydrogen water.

Benefits of technology

The rapid disassembly and cleaning of the double-layer pore filter plate is achieved to ensure that the preparation effect of hydrogen water is not affected, and the formation of high-concentration hydrogen water by precisely controlling the dissolution of hydrogen gas, keeping the product quality stable and reliable.

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Abstract

The utility model relates to the technical field of hydrogen water preparation, and discloses a supersaturated hydrogen water preparation device which comprises a first main body, moving wheels are arranged at the bottom end of the first main body, and a second main body is mounted at one end of the first main body. A worker presses a square hollow block to drive an inner cavity of a sliding piece to slide on the surface of a fixing rod, along with movement of the sliding piece, the sliding piece drives the surface of a limiting block to be gradually separated from an inner cavity of a limiting groove, at the moment, the worker pulls the square hollow block to drive a connecting block and the fixing rod to move, and meanwhile the sliding piece and the limiting block are separated from an inner cavity of a limiting shell; a worker pulls a pull block to drive the double-hole-diameter filter plate to be separated from the inner cavity of the first main body, so that the worker can conveniently and quickly disassemble the double-hole-diameter filter plate, and meanwhile, the double-hole-diameter filter plate can be conveniently cleaned; the influence on the hydrogen water preparation effect caused by surface aperture blockage after long-term use of the double-layer aperture filter plate is prevented.
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Description

Technical Field

[0001] The utility model relates to the technical field of hydrogen water preparation, in particular to a supersaturated hydrogen water preparation device. Background Art

[0002] The preparation methods of hydrogen water mainly include electrolysis, metal-acid reaction and physical mixing. The electrolysis method is to input electric current into water to decompose water to produce hydrogen and oxygen. The hydrogen dissolves in the water to form hydrogen-rich water.

[0003] At present, in the process of preparing supersaturated hydrogen water, the water source needs to be pretreated. After long-term use, the surface of the double-layer aperture filter plate may be blocked by dirt and impurities, and the existing hydrogen water preparation device may not be able to conveniently disassemble and clean the double-layer aperture filter plate. In view of the above defects, the hydrogen water preparation device is improved to make it convenient for staff to quickly disassemble the double-layer aperture filter plate and to clean the double-layer aperture filter plate, so as to prevent the pores on the surface of the double-layer aperture filter plate from being blocked due to long-term use and affecting the preparation effect of hydrogen water. Utility Model Content

[0004] The technical problem to be solved by the utility model is that the prior art has the disadvantage that the double-layer aperture filter plate may not be easily disassembled and cleaned. For this reason, we propose a supersaturated hydrogen water preparation device.

[0005] In order to achieve the above-mentioned purpose, the present application adopts the following technical solution: a supersaturated hydrogen water preparation device, comprising a first main body, a movable wheel is provided at the bottom end of the first main body, a second main body is installed at one end of the first main body, a display screen is provided on the surface of the second main body, a hydrogen storage box is embedded on one side of the second main body, a reaction tank is provided inside the second main body, an electrode plate is installed in the inner cavity of the reaction tank, a hydrogen storage tank is provided inside the hydrogen storage box, a double-layer aperture filter plate is slidably connected to the interior of the first main body, a pull block is fixedly connected to the top of the double-layer aperture filter plate, and a limiting shell is fixedly connected to the top of the double-layer aperture filter plate. The top of the first main body is fixedly connected to the adjustment shell, and the interior of the adjustment shell is slidably connected with a connecting block, fixedly connected to fixing rods on both sides of the connecting block, and a slide is slidably connected to the surface of the fixed rod, and one end of the slide 15 is close to the inner wall of the limiting shell 11 and the adjustment shell 12, and limiting grooves are provided on both sides of the limiting shell. A limiting block is provided at the end of the slide, and the surface of the limiting block is adapted to the inner diameter of the limiting groove.

[0006] Preferably, first springs are fixedly connected to both sides of the connecting block, and one end of the first spring close to the sliding plate is fixedly connected to the sliding plate.

[0007] Preferably, notches are provided on both sides of the adjustment shell, the inner cavity of the notches is slidably connected to a square hollow block, and the inner cavity of the square hollow block is slidably connected to the fixing rod.

[0008] Preferably, a second spring is fixedly connected to the inner cavity of the adjustment housing, and one end of the second spring close to the connecting block is fixedly connected to the connecting block.

[0009] Preferably, a guide groove is provided inside the first body, a guide rod is slidably connected to the inner cavity of the guide groove, and one end of the guide rod close to the double-layer aperture filter plate is fixedly connected to the double-layer aperture filter plate.

[0010] Preferably, the inner cavity of the second main body is provided with a compressed air pump, and the bottom end of the compressed air pump is fixedly connected to a catheter.

[0011] Preferably, a stainless steel storage tube is provided at the bottom end of the conduit, and a valve is installed at one end of the stainless steel storage tube.

[0012] The technical effects and advantages of this utility model are:

[0013] In the present utility model, the staff presses the square hollow block to drive the inner cavity of the slide to slide on the surface of the fixed rod. As the slide moves, the slide drives the surface of the limit block to gradually separate from the inner cavity of the limit groove. At this time, the staff pulls the square hollow block to drive the connecting block and the fixed rod to move, and at the same time, the slide and the limit block are separated from the inner cavity of the limit shell. At this time, the double-layer aperture filter plate will be free, and the staff pulls the pulling block to drive the double-layer aperture filter plate to separate from the inner cavity of the first main body. Through the arrangement of the above structure, the staff can quickly disassemble the double-layer aperture filter plate and clean the double-layer aperture filter plate, thereby preventing the aperture of the double-layer aperture filter plate from being clogged due to long-term use and affecting the preparation effect of hydrogen water.

[0014] In the utility model, the treated water flows into the inner cavity of the reaction tank and reacts through the electrode plates. Then, the hydrogen moves upward with the air pressure. Then, the contact time and pressure of the hydrogen and water are precisely controlled by the compressed air pump to ensure that the hydrogen can be fully dissolved in the water to form high-concentration hydrogen water. The hydrogen water is then transported to the inner cavity of the stainless steel storage tube through the catheter. At this time, the staff can discharge the hydrogen water through the valve. Through the setting of the above structure, the quality of the product after the hydrogen water is saturated is ensured to be stable and reliable. At the same time, the stainless steel storage tube is equipped with a temperature control system to maintain the stability and activity of the hydrogen water. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the main structure of the utility model;

[0016] Figure 2 This is a cross-sectional view of the internal structure of the utility model;

[0017] Figure 3 It is a partial structural sectional view of the utility model;

[0018] Figure 4 This is a schematic diagram of the disassembly structure of the utility model;

[0019] Figure 5 This is a schematic diagram of the guide structure of the present utility model.

[0020] Legend: 1. First body; 2. Moving wheel; 3. Second body; 4. Display screen; 5. Hydrogen storage tank; 6. Reaction tank; 7. Electrode plate; 8. Hydrogen storage tank; 9. Double-layer aperture filter plate; 10. Pull block; 11. Limiting shell; 12. Adjusting shell; 13. Connecting block; 14. Fixing rod; 15. Slide; 16. Limiting groove; 17. Limiting block; 18. First spring; 19. Notch; 20. Square hollow block; 21. Second spring; 22. Guide groove; 23. Guide rod; 24. Compressed air pump; 25. Conduit; 26. Stainless steel storage tube; 27. Valve. DETAILED DESCRIPTION

[0021] The present invention will now be described in further detail with reference to the accompanying drawings and preferred embodiments. These drawings are simplified schematic diagrams that only illustrate the basic structure of the present invention in a schematic manner, and therefore only show components related to the present invention.

[0022] Reference Figure 1 - Figure 5As shown, the utility model provides a technical solution: a supersaturated hydrogen water preparation device, comprising a first main body 1, a moving wheel 2 is provided at the bottom end of the first main body 1, a second main body 3 is installed at one end of the first main body 1, a display screen 4 is provided on the surface of the second main body 3, a hydrogen storage box 5 is embedded on one side of the second main body 3, a reaction tank 6 is provided inside the second main body 3, an electrode plate 7 is installed in the inner cavity of the reaction tank 6, a hydrogen storage tank 8 is provided inside the hydrogen storage box 5, a double-layer aperture filter plate 9 is slidably connected to the interior of the first main body 1, and the top of the double-layer aperture filter plate 9 A pull block 10 is fixedly connected, the top of the double-layer aperture filter plate 9 is fixedly connected to a limit housing 11, the top of the first main body 1 is fixedly connected to an adjustment housing 12, the interior of the adjustment housing 12 is slidably connected to a connecting block 13, both sides of the connecting block 13 are fixedly connected to a fixing rod 14, the lower surface of the fixing rod 14 is slidably connected to a slide 15, one end of the slide 15 is close to the inner wall of the limit housing 11 and the adjustment housing 12, and a limit groove 16 is provided on both sides of the limit housing 11, and a limit block 17 is provided at the end of the slide 15, and the surface of the limit block 17 is in contact with the inner surface of the limit groove 16. The diameters are adapted. When the staff needs to disassemble the double-layer aperture filter plate 9 for cleaning, the staff presses the square hollow block 20 to drive the inner cavity of the slide 15 to slide on the surface of the fixed rod 14, and at the same time squeezes the first spring 18 to store force. As the slide 15 moves, the slide 15 drives the surface of the limit block 17 to gradually break away from the inner cavity of the limit groove 16. At this time, the staff pulls the square hollow block 20 to make the surface of the square hollow block 20 slide in the inner cavity of the notch 19. As the square hollow block 20 moves, the square hollow block 20 drives the connecting block 13 and The fixing rod 14 is displaced. As the fixing rod 14 is displaced, the second spring 21 is squeezed to store force, and at the same time, the slide 15 and the limit block 17 are separated from the inner cavity of the limit shell 11. At this time, the double-layer aperture filter plate 9 will be free, and the staff pulls the pulling block 10 to drive the double-layer aperture filter plate 9 to separate from the inner cavity of the first main body 1. Through the arrangement of the above structure, it is convenient for the staff to quickly disassemble the double-layer aperture filter plate 9, and it is also convenient to clean the double-layer aperture filter plate 9 to prevent the pores on the surface of the double-layer aperture filter plate 9 from being clogged due to long-term use and affecting the preparation effect of hydrogen water.

[0023] Reference Figure 4 As shown, in this embodiment: both sides of the connecting block 13 are fixedly connected with the first spring 18, and the end of the first spring 18 close to the slide 15 is fixedly connected to the slide 15. The staff presses the square hollow block 20 to make the square hollow block 20 push the slide 15 to move, and at the same time squeeze the first spring 18 to store force. Through the setting of the above structure, the rebound force of the first spring 18 continues to push the slide 15 to reset, and at the same time drives the limit block 17 to engage with the limit groove 16.

[0024] Reference Figure 4As shown, in this embodiment: slots 19 are provided on both sides of the adjustment shell 12, and the inner cavity of the slot 19 is slidably connected to a square hollow block 20, and the inner cavity of the square hollow block 20 is slidably connected to the fixed rod 14. The staff pulls the square hollow block 20 to make the surface of the square hollow block 20 slide left and right in the inner cavity of the slot 19. Through the setting of the above structure, the connection block 13 maintains directional displacement when it is displaced.

[0025] Reference Figure 4 As shown, in this embodiment: the inner cavity of the adjustment shell 12 is fixedly connected to the second spring 21, and the end of the second spring 21 close to the connecting block 13 is fixedly connected to the connecting block 13. The staff pulls the square hollow block 20 to drive the connecting block 13 to move, and at the same time squeezes the second spring 21 to accumulate force. Through the setting of the second spring 21, the rebound force of the second spring 21 continuously pushes the connecting block 13 to reset, thereby improving the coordination between the structures.

[0026] Reference Figure 5 As shown, in this embodiment: a guide groove 22 is opened inside the first main body 1, and a guide rod 23 is slidably connected to the inner cavity of the guide groove 22. The end of the guide rod 23 close to the double-layer aperture filter plate 9 is fixedly connected to the double-layer aperture filter plate 9. The staff pulls the pull block 10 to drive the double-layer aperture filter plate 9 to move. At the same time, the double-layer aperture filter plate 9 drives the surface of the guide rod 23 to slide in the inner cavity of the guide groove 22. Through the arrangement of the above structure, the double-layer aperture filter plate 9 maintains directional displacement when it moves.

[0027] Reference Figure 2 As shown, in this embodiment: the inner cavity of the second main body 3 is provided with a compressed air pump 24, and the bottom end of the compressed air pump 24 is fixedly connected to a conduit 25. When the staff needs to compress and store hydrogen, the treated water flows into the inner cavity of the reaction tank 6 and reacts through the electrode plate 7. Then the hydrogen moves upward with the air pressure. The compressed air pump 24 is then used to accurately control the contact time and pressure of hydrogen and water to ensure that the hydrogen can be fully dissolved in the water to form a high concentration of hydrogen water. The hydrogen water is then transported to the inner cavity of the stainless steel storage tube 26 through the conduit 25. At this time, the staff can discharge the hydrogen water through the valve 27. Through the setting of the above structure, the quality of the product after the hydrogen water is saturated is ensured to be stable and reliable. At the same time, the stainless steel storage tube 26 is equipped with a temperature control system to maintain the stability and activity of the hydrogen water.

[0028] Reference Figure 2 As shown, in this embodiment: a stainless steel storage tube 26 is provided at the bottom end of the conduit 25, and a valve 27 is installed at one end of the stainless steel storage tube 26. The hydrogen water is transported to the inner cavity of the stainless steel storage tube 26 through the conduit 25. At this time, the staff can discharge the hydrogen water through the valve 27. Through the setting of the stainless steel storage tube 26, the hydrogen water maintains stability and activity.

[0029] Working principle: when the staff needs to disassemble the double-layer aperture filter plate 9 for cleaning, the staff presses the square hollow block 20, driving the inner cavity of the slide 15 to slide on the surface of the fixing rod 14, and at the same time squeezing the first spring 18 to store force. As the slide 15 moves, the slide 15 drives the surface of the limit block 17 to gradually disengage from the inner cavity of the limit groove 16. At this time, the staff pulls the square hollow block 20 to make the surface of the square hollow block 20 slide in the inner cavity of the slot 19. As the square hollow block 20 moves, the square hollow block 20 drives the connecting block 13 and the fixing rod 14 to move. As the fixing rod 14 moves, the second spring 21 is squeezed to store force, and at the same time, the slide 15 and the limit block 17 are disengaged from the inner cavity of the limit housing 11. At this time, the double-layer aperture filter plate 9 will be unrestrained, and the staff pulls the pulling block 10 to drive the double-layer aperture filter plate 9 to disengage from the inner cavity of the first main body 1. The setting of the structure makes it easy for the staff to quickly disassemble the double-layer aperture filter plate 9 and clean the double-layer aperture filter plate 9 to prevent the pores on the surface of the double-layer aperture filter plate 9 from being clogged due to long-term use, which affects the preparation effect of hydrogen water. When the staff needs to compress and store hydrogen, the treated water flows into the inner cavity of the reaction tank 6 and reacts through the electrode plate 7. Then the hydrogen moves upward with the air pressure. The contact time and pressure of hydrogen and water are then accurately controlled by the compressed air pump 24 to ensure that the hydrogen can be fully dissolved in the water to form high-concentration hydrogen water. The hydrogen water is then transported to the inner cavity of the stainless steel storage tube 26 through the conduit 25. At this time, the staff can discharge the hydrogen water through the valve 27. The setting of the above structure ensures that the quality of the product after saturation of hydrogen water is stable and reliable. At the same time, the stainless steel storage tube 26 is equipped with a temperature control system to maintain the stability and activity of the hydrogen water.

[0030] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A supersaturated hydrogen water preparation device, comprising a first body (1), characterized in that: A moving wheel (2) is provided at the bottom end of the first body (1), a second body (3) is installed at one end of the first body (1), a display screen (4) is provided on the surface of the second body (3), a hydrogen storage box (5) is embedded on one side of the second body (3), a reaction tank (6) is provided inside the second body (3), an electrode plate (7) is installed in the inner cavity of the reaction tank (6), a hydrogen storage tank (8) is provided inside the hydrogen storage box (5), a double-layer aperture filter plate (9) is slidably connected to the inside of the first body (1), a pull block (10) is fixedly connected to the top end of the double-layer aperture filter plate (9), and the double-layer aperture filter plate (9) is provided with a pull block (10). The top end of the first main body (1) is fixedly connected to a limiting shell (11), the top end of the first main body (1) is fixedly connected to an adjusting shell (12), the interior of the adjusting shell (12) is slidably connected to a connecting block (13), both sides of the connecting block (13) are fixedly connected to fixing rods (14), the surface of the fixing rod (14) is slidably connected to a slide (15), one end of the slide (15) is close to the inner wall of the limiting shell (11) and the adjusting shell (12), both sides of the limiting shell (11) are provided with limiting grooves (16), and the end of the slide (15) is provided with a limiting block (17), and the surface of the limiting block (17) is adapted to the inner diameter of the limiting groove (16).

2. A supersaturated hydrogen water preparation device according to claim 1, characterized in that: Both sides of the connecting block (13) are fixedly connected with a first spring (18), and one end of the first spring (18) close to the slide (15) is fixedly connected to the slide (15).

3. A supersaturated hydrogen water preparation device according to claim 1, characterized in that: Both sides of the adjustment housing (12) are provided with slots (19), the inner cavity of the slots (19) is slidably connected to a square hollow block (20), and the inner cavity of the square hollow block (20) is slidably connected to the fixing rod (14).

4. A supersaturated hydrogen water preparation device according to claim 1, characterized in that: A second spring (21) is fixedly connected to the inner cavity of the regulating housing (12), and one end of the second spring (21) close to the connecting block (13) is fixedly connected to the connecting block (13).

5. A supersaturated hydrogen water preparation device according to claim 1, characterized in that: A guide groove (22) is provided inside the first main body (1), and a guide rod (23) is slidably connected to the inner cavity of the guide groove (22), and one end of the guide rod (23) close to the double-layer aperture filter plate (9) is fixedly connected to the double-layer aperture filter plate (9).

6. A supersaturated hydrogen water preparation device according to claim 1, characterized in that: The inner cavity of the second main body (3) is provided with a compressed air pump (24), and the bottom end of the compressed air pump (24) is fixedly connected to a conduit (25).

7. A supersaturated hydrogen water preparation device according to claim 6, characterized in that: A stainless steel storage tube (26) is provided at the bottom end of the conduit (25), and a valve (27) is installed at one end of the stainless steel storage tube (26).