A water cup for making hydrogen-rich mineral water and a method of using the same

By designing a water cup that includes a cup body, a cup lid assembly, ceramic mineralized ball filter media, and a hydrogen production assembly, and utilizing upright and inverted operation and an anti-drip and splash mechanism, the problem of existing electrolytic hydrogen-rich water cups being unable to produce hydrogen-rich mineral water has been solved, achieving a simple and efficient production of hydrogen-rich mineral water.

CN118255428BActive Publication Date: 2025-12-16ANHUI VIANO WATER PURIFICATION TECH CO LTD

Patent Information

Application Number
CN202410456079.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-04-16
Publication Date
2025-12-16
Estimated Expiration
2044-04-16

AI Technical Summary

Technical Problem

Existing electrolytic hydrogen-rich water cups cannot produce hydrogen-rich mineral water rich in essential minerals without damaging the mineral composition of the water.

Method used

A water cup has been designed, comprising a cup body, a detachable lid assembly, ceramic mineralized ball filter media, and a hydrogen production assembly. Hydrogen and mineral elements are released respectively through upright and inverted operation. Combined with an anti-drip and splash-proof mechanism, hydrogen-rich mineral water can be produced.

Benefits of technology

It enables the easy production of hydrogen-rich mineral water without damaging the mineral composition, improving the user experience and accelerating the integration of mineral elements.

✦ Generated by Eureka AI based on patent content.

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    Figure CN118255428B_ABST
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Abstract

The application discloses a kind of water cup of preparation hydrogen-rich mineral water and its using method, it is related to water cup technical field.The cup body, cup cover assembly, ceramic mineralization ball filter material, base assembly and hydrogen production assembly are included.When hydrogen-rich mineral water is prepared, first, the water cup is vertically erected, water is injected into the cup body not more than the highest water level line, ensure that water does not contact ceramic mineralization ball filter material, hydrogen production assembly is started at this time to produce hydrogen, when hydrogen production ends, the water in the cup body becomes hydrogen-rich water containing hydrogen gas;Then, the cup body is inverted, hydrogen-rich water seeps into the mineralization cavity through the opening at the bottom of the mineralization cavity to soak the ceramic mineralization ball filter material containing a variety of mineral trace elements, the mineral trace elements in the ceramic mineralization ball will dissolve into hydrogen-rich water, and hydrogen-rich mineral water is obtained, and users can very simply obtain healthy hydrogen-rich mineral drinking water.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of water cups, in particular to a water cup for preparing hydrogen-rich mineral water and a use method thereof. BACKGROUND

[0002] Hydrogen-rich water has a certain positive effect on human health, mainly through its antioxidant effect, and has potential therapeutic and preventive effects on a variety of diseases, so it is widely used. The existing hydrogen-rich water cup can obtain hydrogen-rich water in time by electrolyzing water.

[0003] Mineral water rich in hydrogen, selenium, strontium and other elements is more beneficial to human health, but electrolysis of mineral water will destroy the nutritional ingredients, so the existing electrolytic hydrogen-rich water cup cannot prepare hydrogen-rich mineral water rich in beneficial minerals essential for the human body.

[0004] Therefore, there is an urgent need to invent a water cup that can quickly prepare hydrogen-rich mineral water without destroying the mineral content of the water. SUMMARY

[0005] The present application relates to the technical field of water cups, in particular to a water cup for preparing hydrogen-rich mineral water and a use method thereof.

[0006] The purpose of the present application can be achieved by the following technical solutions:

[0007] A water cup for preparing hydrogen-rich mineral water, comprising:

[0008] a cup body, both ends of which are provided with openings;

[0009] a cup cover assembly, which is detachably covered on the top opening of the cup body;

[0010] ceramic mineralization ball filter material, which is arranged at the bottom of the cup cover assembly;

[0011] a base assembly, which is detachably mounted on the bottom opening of the cup body;

[0012] a hydrogen production assembly, which is mounted in the base assembly and located at the bottom of the cup body;

[0013] wherein, when the cup body is upright, the hydrogen production assembly is in contact with the water in the cup body and releases hydrogen into the water; when the cup body is inverted, the ceramic mineralization ball filter material is in contact with the water in the cup body and releases mineral elements into the water.

[0014] As a further scheme of the present application: the cup cover assembly comprises an upper cover and a lower cover, the upper cover is detachably covered on the top of the lower cover, the lower cover is detachably covered on the top opening of the cup body, a mineralization cavity for containing the ceramic mineralized ball filter material is arranged in the middle of the lower cover, a top sealing cover is detachably arranged on the top of the mineralization cavity, and a plurality of openings are arranged on the bottom of the mineralization cavity.

[0015] As a further scheme of the present application: it further comprises an anti-dripping mechanism, the anti-dripping mechanism comprises:

[0016] A perforated partition plate is fixedly arranged in the lower section of the mineralization cavity, and the ceramic mineralized ball filter material is contained between the perforated partition plate and the top sealing cover;

[0017] A hollow column is fixedly arranged on the perforated partition plate at the bottom end and penetrates the top sealing cover at the top end, and the top end and the bottom end of the hollow column are both sealed;

[0018] A piston is arranged between the perforated partition plate and the bottom of the mineralization cavity, and when the piston is tightly attached to the bottom of the mineralization cavity, the plurality of openings on the bottom of the mineralization cavity are sealed;

[0019] A driving member is arranged in the hollow column for driving the piston to move up and down;

[0020] A control module is arranged in the upper cover, and when the upper cover is covered on the lower cover, the control module is electrically connected with the driving member.

[0021] As a further scheme of the present application: the driving member comprises:

[0022] An electric telescopic rod is fixedly arranged in the hollow column;

[0023] A connecting rod is fixedly connected with the telescopic end of the electric telescopic rod at the top end and fixedly connected with the piston at the bottom end and penetrates the perforated partition plate.

[0024] As a further scheme of the present application: the control module comprises:

[0025] A battery is embedded in the upper cover;

[0026] A controller is arranged at the bottom of the upper cover;

[0027] A display operation screen is arranged at the top of the upper cover;

[0028] The display operation screen is electrically connected with the controller and the electric telescopic rod through the battery.

[0029] As a further scheme of the present application, the controller is further connected with two upper butt joints, the electric telescopic rod is connected with two lower butt joints through a power line, and the controller is electrically connected with the electric telescopic rod after the two upper butt joints butt with the two lower butt joints.

[0030] As a further scheme of the present application, the base assembly comprises a base body and a bottom plate, and the bottom plate is detachably mounted at the bottom of the base body.

[0031] As a further scheme of the present application, the hydrogen production assembly comprises a battery II, an electric control panel, an electrolyzer and a display operation screen II, the electrolyzer, the electric control panel and the battery II are sequentially and electrically connected in the base body from top to bottom, and the display operation screen II is arranged at the periphery of the base body.

[0032] As a further scheme of the present application, the electrolyzer is further provided with a hydrogen concentration detection sensor.

[0033] And a use method of the water cup for preparing hydrogen-rich mineral water, comprising the following steps:

[0034] S1: standing the water cup body, injecting pure drinking water into the water cup body, and the water level does not exceed the highest water level line, that is, the highest horizontal surface does not contact the bottom of the cup cover assembly;

[0035] S2: starting the hydrogen production assembly to produce hydrogen in the water, and obtaining hydrogen-rich water;

[0036] S3: after the hydrogen production is completed, the hydrogen production assembly is turned off and the water cup body is inverted, the hydrogen-rich water is soaked in the ceramic mineralization ball filter material, the mineral microelements in the ceramic mineralization ball filter material are dissolved in the hydrogen-rich water, and hydrogen-rich mineral water is obtained;

[0037] S4: the cup cover assembly is removed, and the hydrogen-rich mineral water in the cup body can be drunk.

[0038] The present application has the following beneficial effects:

[0039] (1) The present application sets the ceramic mineralization ball filter material under the cup cover assembly and sets the hydrogen production assembly in the base assembly, first stands the water cup, injects water not exceeding the highest water level line into the water cup body, ensures that the water does not contact the ceramic mineralization ball filter material, starts the hydrogen production assembly to produce hydrogen at this time, when the hydrogen production is completed, the water in the cup body becomes hydrogen-rich water containing hydrogen; then inverts the water cup body, the hydrogen-rich water seeps into the mineralization cavity through the opening at the bottom of the mineralization cavity to soak the ceramic mineralization ball filter material containing various mineral microelements, the mineral microelements in the ceramic mineralization ball dissolve in the hydrogen-rich water, hydrogen-rich mineral water is obtained, and the user can extremely simply obtain hydrogen-rich mineral drinking water beneficial to health.

[0040] (2) By setting an anti-drip mechanism in the cup lid assembly, after the hydrogen-rich mineral drinking water is produced, the user can start the electric telescopic rod through the display operation screen, push the piston to the bottom of the mineralization chamber, and insert multiple plugs into multiple openings to seal the openings. After the openings are sealed, the user can remove the cup lid assembly to drink the hydrogen-rich mineral water in the cup in time. The anti-drip mechanism prevents water in the mineralization chamber from flowing out of the openings and splashing into the surrounding environment when the user opens the cup lid assembly to drink, thereby improving the user experience.

[0041] (3) The anti-drip mechanism set in this invention can also set the electric telescopic rod to reciprocate up and down at a certain frequency during the production of mineral water, drive the piston to move up and down synchronously, improve the fluidity of water, and enable mineral trace elements to be integrated into hydrogen-rich water more quickly and fully, thereby improving the production efficiency. Attached Figure Description

[0042] The invention will now be further described with reference to the accompanying drawings.

[0043] Figure 1 This is a schematic diagram of the structure of a water cup for producing hydrogen-rich mineral water according to the present invention;

[0044] Figure 2 This is a schematic diagram of the explosion structure of a water cup for producing hydrogen-rich mineral water according to the present invention;

[0045] Figure 3 This is a schematic diagram of the internal structure of the cup lid assembly in Embodiment 1 of the present invention;

[0046] Figure 4 This is a schematic diagram of the internal structure of the cup lid assembly in Embodiment 2 of the present invention;

[0047] Figure 5 This is a schematic diagram of the internal structure of the upper cover, lower cover and top cover separated in Embodiment 2 of the present invention;

[0048] Figure 6 This is a schematic diagram of the internal structure of the anti-drip and splash mechanism in Embodiment 2 of the present invention.

[0049] In the diagram: 1. Cup body; 2. Cup lid assembly; 21. Upper lid; 22. Lower lid; 23. Mineralization chamber; 24. Top seal; 25. Opening; 3. Ceramic mineralization ball filter media; 4. Base assembly; 41. Base body; 42. Base plate; 5. Hydrogen production assembly; 51. Battery II; 52. Electronic control board; 53. Electrolyzer; 54. Display and operation screen II; 55. Hydrogen concentration detection sensor; 6. Anti-drip mechanism; 61. Perforated partition; 62. Hollow column; 63. Piston; 64. Drive component; 641. Electric telescopic rod; 642. Connecting rod; 65. Control module; 651. Battery I; 652. Controller; 653. Display and operation screen I; 654. Upper connector; 655. Lower connector. DETAILED DESCRIPTION

[0050] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.

[0051] In the description of the present application, it should be understood that the terms "upper", "lower", "left", "right", "front", "back", etc. indicate the orientation or positional relationship shown in the drawings, and are only used to facilitate the description of the present application and simplify the description, and do not indicate or imply that the device or element referred to must have a particular orientation, a particular orientation configuration and operation, therefore, it cannot be understood as a limitation on the present application.

[0052] In addition, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connecting", etc. should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium, or it can be the communication inside two elements. For a person of ordinary skill in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0053] The technical solutions of the present application will be specifically described below with reference to the drawings.

[0054] Embodiment one

[0055] Please refer to Figures 1-3 As shown in the figure, the present embodiment provides a water cup for preparing hydrogen-rich mineral water, which comprises a cup body 1, a cup cover assembly 2, a ceramic mineralization ball filter material 3, a base assembly 4 and a hydrogen production assembly 5.

[0056] As Figure 2 shown, the cup body 1 is provided with threaded openings at both ends, and the cup body 1 is used to hold pure drinking water.

[0057] The cup cover assembly 2 is detachably covered on the top opening of the cup body 1; as Figure 3As shown, in the embodiment, the cup cover assembly 2 comprises an upper cover 21 and a lower cover 22, the upper cover 21 is detachably connected to the top of the lower cover 22 by screwing, so that the upper cover 21 can be tightly covered on the top of the lower cover 22 or detached from the top of the lower cover 22; the lower cover 22 is detachably connected to the top opening of the cup body 1 by screwing, so that the lower cover 22 can be tightly covered on the top opening of the cup body 1 or detached from the top opening of the cup body 1; the lower cover 22 is provided with a mineralization cavity 23 for containing ceramic mineralized ball filter material 3 in the middle, the top of the mineralization cavity 23 is provided with a top cover 24 detachably connected by clamping, so that the top cover 24 can be tightly covered on the top of the mineralization cavity 23 or detached from the top of the mineralization cavity 23, so that the ceramic mineralized ball filter material 3 can be put into the mineralization cavity 23, and the cup cover assembly 2 is also convenient to disassemble and clean; a plurality of openings 25 are opened at the bottom of the mineralization cavity 23, after the ceramic mineralized ball in the mineralization cavity 23 is soaked in water, the trace elements of minerals in the ceramic mineralized ball will be dissolved into the water to obtain water containing a plurality of trace elements of minerals beneficial to human body, such as selenium, strontium and other trace elements of minerals beneficial to human body.

[0058] As shown, Figure 2 As shown, the base assembly 4 is detachably installed at the bottom opening of the cup body 1, in the embodiment, the base assembly 4 comprises a base body 41 and a bottom plate 42, the bottom plate 42 is detachably installed at the bottom of the base body 41 by clamping, so that the bottom plate 42 can be tightly attached to the bottom of the base body 41 or detached from the bottom of the base body 41, the hydrogen production assembly 5 is installed in the base body 41, the top of the base body 41 is detachably installed at the bottom opening of the cup body 1 by screwing, so that the base body 41 can be tightly installed at the bottom opening of the cup body 1 or detached from the bottom opening of the cup body 1, thereby facilitating the maintenance of the hydrogen production assembly 5 in the base body 41.

[0059] In the embodiment, the hydrogen production assembly 5 comprises a battery 51, an electric control board 52, an electrolyzer 53 and a display operation screen 54, the electrolyzer 53, the electric control board 52 and the battery 51 are sequentially and electrically connected in the base body 41 from top to bottom, the display operation screen 54 is arranged on the outer periphery of the base body 41, the electrolyzer 53 is further provided with a hydrogen concentration detection sensor 55, the battery is a battery that can be charged through a USB interface, and the battery supplies power to the electric control board 52, the electrolyzer 53, the display operation screen 54 and the hydrogen concentration detection sensor 55, the electric control board 52 is in communication connection with the electrolyzer 53, the display operation screen 54 and the hydrogen concentration detection sensor 55, the positive and negative electrodes of the electrolyzer 53 are electrified to electrolyze water to produce hydrogen, the hydrogen is dissolved in the water in the cup body 1 to obtain hydrogen-rich water, the hydrogen concentration in the water is detected in real time through the hydrogen concentration detection sensor 55, and the user can directly read the hydrogen concentration value and control the start and stop of the hydrogen production assembly 5 through the display operation screen.

[0060] The method for preparing the hydrogen-rich mineral water using the water cup is as follows:

[0061] The water cup body 1 is upright, and the purified drinking water is injected into the water cup body 1, and the water level does not exceed the highest water level line of the inner shell of the cup body 1, that is, the highest level of the purified drinking water does not contact the bottom of the mineralization cavity 23.

[0062] After the purified drinking water is injected, the user starts the electrolyzer 53 through the display operation screen two 54, hydrogen is prepared by electrolyzing water through the electrolyzer 53, at the same time, the hydrogen concentration detection sensor 55 detects the hydrogen concentration in the water in real time, the user reads the hydrogen concentration content through the hydrogen concentration value displayed by the display operation screen, and when the user wants to stop preparing hydrogen or reaches the preset hydrogen concentration value, the hydrogen preparation is stopped, and the hydrogen production assembly 5 is closed at this time.

[0063] After the hydrogen preparation is completed, the water cup body 1 is inverted, the hydrogen-rich water seeps into the mineralization cavity 23 through the opening 25 at the bottom of the mineralization cavity 23 to soak the ceramic mineralization ball filter material 3 containing various mineral trace elements, and the mineral trace elements in the ceramic mineralization ball dissolve into the hydrogen-rich water to obtain the hydrogen-rich mineral water.

[0064] After soaking for a period of time, the water cup body 1 is upright again, and the cup cover assembly 2 is removed, so that the hydrogen-rich mineral water in the cup body 1 can be drunk.

[0065] Embodiment Two

[0066] Please refer to Figures 4-6 On the basis of embodiment one, the anti-dripping mechanism 6 is additionally arranged on the cup cover assembly 2 to prevent the water in the mineralization cavity 23 from flowing out of the opening 25 and splashing into the surrounding environment when the user opens the cup cover assembly 2 to drink water, thereby improving the user experience.

[0067] The anti-dripping mechanism 6 includes a perforated partition plate 61, a hollow column 62, a piston 63, a driving member 64, and a control module 65.

[0068] The perforated partition plate 61 is fixedly arranged in the lower section of the mineralization cavity 23, the ceramic mineralization ball filter material 3 is contained between the perforated partition plate 61 and the top cover 24, and the hydrogen-rich water can flow into the ceramic mineralization ball filter material 3 for soaking from the holes of the perforated partition plate 61,

[0069] The bottom end of the hollow column 62 is fixedly mounted on the perforated partition 61, and the top end of the hollow column 62 passes through the top cover 24. The top cover 24 is detachably sealed and fitted onto the top end of the hollow column 62. Both the top and bottom ends of the hollow column 62 are sealed to ensure that no water seeps into the hollow column 62 during use. The piston 63 is positioned between the perforated partition 61 and the bottom of the mineralization chamber 23. The piston 63 can move up and down between the perforated partition 61 and the bottom of the mineralization chamber 23. When the piston 63 moves to be close to the bottom of the mineralization chamber 23, the multiple openings 25 at the bottom of the mineralization chamber 23 are sealed by the piston 63, thereby preventing water in the mineralization chamber 23 from flowing out from the openings 25 at the bottom of the mineralization chamber 23 and splashing into the surrounding environment. It can be understood that, in order to make the sealing effect of the piston 63 on the openings 25 better, multiple plugs matching the openings 25 are provided at the bottom of the piston 63. When the piston 63 is close to the bottom of the mineralization chamber 23, the multiple plugs are inserted into the multiple openings 25 accordingly.

[0070] The driving component 64 is disposed inside the hollow column 62. The function of the driving component 64 is to drive the piston 63 to move up and down. Figure 6 As shown, in this embodiment, the driving component 64 includes an electric telescopic rod 641 and a connecting rod 642. The electric telescopic rod 641 is fixedly disposed inside the hollow column 62; the top end of the connecting rod 642 is fixedly connected to the telescopic end of the electric telescopic rod 641, as shown. Figure 5 As shown, the bottom end of the connecting rod 642 passes through the perforated partition 61 and is fixedly connected to the piston 63. After the electric telescopic rod 641 is started, the telescopic end can drive the connecting rod 642 to move up and down, and the connecting rod 642 can drive the piston 63 to move up and down.

[0071] The control module 65 is disposed inside the upper cover 21. When the upper cover 21 is placed on top of the lower cover 22, the control module 65 is electrically connected to the drive component 64, and the control module 65 is used to control the start and stop of the drive component 64. Figure 5 As shown, in this embodiment, the control module 65 includes a battery 651, a controller 652, a display / operation screen 653, and a connector. The battery 651 is embedded in the upper cover 21 and can also use a battery that can be charged via a USB interface. The battery 651 supplies power to the controller 652 and the display / operation screen 653. The controller 652 can be located at the bottom of the upper cover 21. The display / operation screen 653 is located at the top of the upper cover 21. The display / operation screen 653 is electrically connected to the controller 652 through the battery 651, and the controller 652 is communicatively connected to the electric telescopic rod 641. The controller 652 is connected to two upper connectors 654, and the electric telescopic rod 641 is connected to two lower connectors 655 via a power cord. When the upper cover 21 is tightly closed on the lower cover 22, the two upper connectors 654 are connected to the two lower connectors 655 respectively, and the controller 652 is electrically connected to the electric telescopic rod 641. The user can control the start and stop of the electric telescopic rod 641 through the display operation screen 653.

[0072] There are two methods to make hydrogen-rich mineral water using the water cup with the anti-dripping mechanism 6 provided in this embodiment:

[0073] Method one

[0074] The water cup body 1 is upright, and pure drinking water is injected into the water cup body 1, and the water level does not exceed the highest water level line provided in the inner shell of the cup body 1, that is, the highest level of the pure drinking water does not contact the bottom of the mineralization cavity 23.

[0075] After injecting an appropriate amount of pure drinking water, the user starts the electrolyzer 53 through the display operation screen two 54, hydrogen is generated by electrolyzing water through the electrolyzer 53, at the same time, the hydrogen concentration detection sensor 55 detects the hydrogen concentration in the water in real time, and the user reads the hydrogen concentration content through the hydrogen concentration value displayed on the display operation screen, and when the user wants to stop generating hydrogen or reaches the preset hydrogen concentration value, the hydrogen generation is stopped, and at this time, the hydrogen generation assembly 5 is closed.

[0076] After the hydrogen generation is completed, the water cup body 1 is inverted, the hydrogen-rich water flows through the opening 25 and the hole partition 61 to infiltrate the soaked ceramic mineralization ball filter material 3, the mineral microelements in the ceramic mineralization ball filter material 3 dissolve into the hydrogen-rich water, and the hydrogen-rich mineral water is obtained.

[0077] After soaking for a period of time, the water cup body 1 is upright again, and the user controls the electric telescopic rod 641 to start through the display operation screen one 653, and pushes the piston 63 to tightly adhere to the bottom of the mineralization cavity 23. A plurality of plug heads are inserted into a plurality of openings 25, and after the openings 25 are sealed, the cup cover assembly 2 is removed, and the hydrogen-rich mineral water in the cup body 1 can be drunk.

[0078] Method two

[0079] Before water is generated, the user controls the piston 63 to block the openings 25, and then injects pure drinking water into the upright water cup body 1, and the water level exceeds the highest water level line provided in the inner shell of the cup body 1, so that the mineralization cavity 23 is also submerged in water. At this time, since the openings 25 are blocked, water cannot enter the mineralization cavity 23.

[0080] After the water injection is completed, the user starts the electrolyzer 53 through the display operation screen two 54, hydrogen is generated by electrolyzing water through the electrolyzer 53, the hydrogen concentration detection sensor 55 detects the hydrogen concentration in the water in real time, and the user reads the hydrogen concentration content through the hydrogen concentration value displayed on the display operation screen, and when the user wants to stop generating hydrogen or reaches the preset hydrogen concentration value, the hydrogen generation is stopped, and at this time, the electrolyzer 53 is closed.

[0081] After the hydrogen generation is completed, the water cup body 1 is inverted, the hydrogen-rich water flows through the opening 25 and the hole partition 61 to infiltrate the soaked ceramic mineralization ball filter material 3, the mineral microelements in the ceramic mineralization ball filter material 3 dissolve into the hydrogen-rich water, and the hydrogen-rich mineral water is obtained.

[0082] It is worth noting that when the hydrogen-rich mineral water is prepared using the method of Example Two, the electric telescopic rod 641 can be set to reciprocate up and down at a certain frequency during the preparation of the mineral water, driving the piston 63 to reciprocate up and down synchronously, improving the fluidity of the water, so that the mineral trace elements can be more quickly and fully dissolved into the hydrogen-rich water, and the preparation efficiency is improved.

[0083] The above detailed description of the preferred embodiments of the present application should not be considered as limiting the scope of the application. Any equivalent changes and improvements made in accordance with the scope of the application should still be included in the scope of the patent.

Claims

1. A water cup for producing hydrogen-rich mineral water, characterized by comprising: The application relates to a cup body (1) with two ends provided with openings, a cup cover assembly (2) detachably covering the top end opening of the cup body (1), ceramic mineralized ball filter material (3) arranged at the bottom of the cup cover assembly (2), a base assembly (4) detachably mounted on the bottom end opening of the cup body (1), and a hydrogen production assembly (5) mounted in the base assembly (4) and located at the bottom of the cup body (1). When the cup body (1) is vertically erected, the hydrogen production assembly (5) is in contact with water in the cup body (1) and releases hydrogen into the water; when the cup body (1) is inverted, the ceramic mineralized ball filter material (3) is in contact with water in the cup body (1) and releases mineral elements into the water. The cup cover assembly (2) comprises an upper cover (21) and a lower cover (22), the upper cover (21) is detachably arranged on the top of the lower cover (22), the lower cover (22) is detachably arranged on the top end opening of the cup body (1), a mineralization cavity (23) for containing the ceramic mineralized ball filter material (3) is arranged in the middle of the lower cover (22), a top sealing cover (24) is detachably arranged on the top of the mineralization cavity (23), and a plurality of openings (25) are formed in the bottom of the mineralization cavity (23). The application further comprises an anti-dripping mechanism (6) which comprises a perforated partition plate (61) fixedly arranged in the lower section of the mineralization cavity (23), the ceramic mineralized ball filter material (3) is contained between the perforated partition plate (61) and the top sealing cover (24), a hollow column (62) with its bottom end fixedly arranged on the perforated partition plate (61) and its top end penetrating through the top sealing cover (24), the top end and the bottom end of the hollow column (62) are both sealed, a piston (63) arranged between the perforated partition plate (61) and the bottom of the mineralization cavity (23), when the piston (63) is tightly attached to the bottom of the mineralization cavity (23), the plurality of openings (25) in the bottom of the mineralization cavity (23) are sealed, a driving member (64) arranged in the hollow column (62) for driving the piston (63) to move up and down, and a control module (65) arranged in the upper cover (21) and electrically connected with the driving member (64) when the upper cover (21) is arranged on the lower cover (22). The base assembly (4) comprises a base body (41) and a bottom plate (42) detachably mounted on the bottom of the base body (41). The driving member (64) comprises an electric telescopic rod (641) fixedly arranged in the hollow column (62) and a connecting rod (642) with its top end fixedly connected with the telescopic end of the electric telescopic rod (641) and its bottom end penetrating through the perforated partition plate (61) and fixedly connected with the piston (63). The control module (65) comprises a battery (651) embedded in the upper cover (21), a controller (652) arranged at the bottom of the upper cover (21), and a display operation screen (653) arranged at the top of the upper cover (21). ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ 2. The water cup for producing hydrogen-rich mineral water according to claim 1, characterized in that, ​ ​ ​ 3. The water cup for producing hydrogen-rich mineral water according to claim 2, characterized in that, ​ ​ ​ ​ The display operation screen one (653) is electrically connected with the controller (652) through the battery one (651), and the controller (652) is in communication connection with the electric telescopic rod (641).

4. The water cup for producing hydrogen-rich mineral water according to claim 3, characterized in that: The controller (652) is further connected with two upper butt joints (654), and the electric telescopic rod (641) is connected with two lower butt joints (655) through a power line; after the two upper butt joints (654) are butt-jointed with the two lower butt joints (655) respectively, the controller (652) is electrically connected with the electric telescopic rod (641).

5. The water cup for producing hydrogen-rich mineral water according to claim 4, characterized in that: The hydrogen production assembly (5) comprises a battery two (51), an electric control board (52), an electrolyzer (53) and a display operation screen two (54); the electrolyzer (53), the electric control board (52) and the battery two (51) are sequentially and electrically connected in the base body (41) from top to bottom; and the display operation screen two (54) is arranged on the outer periphery of the base body (41).

6. The water cup for producing hydrogen-rich mineral water according to claim 5, characterized in that: The electrolyzer (53) is further provided with a hydrogen concentration detection sensor (55).

7. A use method of the water cup for preparing hydrogen-rich mineral water according to claim 1, characterized in that: S1: standing the water cup body (1), injecting pure drinking water into the water cup body (1), and the water level does not exceed the highest water level, that is, the highest horizontal surface does not contact the bottom of the cup cover assembly (2); S2: starting the hydrogen production assembly (5) to produce hydrogen in water, and obtaining hydrogen-rich water; S3: after the hydrogen production is completed, the hydrogen production assembly (5) is closed, and the water cup body (1) is inverted, so that the hydrogen-rich water soaks the ceramic mineralization ball filter material (3), the mineral substances and trace elements in the ceramic mineralization ball dissolve into the hydrogen-rich water, and hydrogen-rich mineral water is obtained; S4: removing the cup cover assembly (2) can drink the hydrogen-rich mineral water in the water cup body (1).

Citation Information

Patent Citations

  • Water cup for preparing hydrogen-rich mineral water

    CN222181915U

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