A graphene water purifier

Small molecular cluster water is generated through the graphene filter layer and heating module. Combined with the hydrogenation cup and dry burning chamber, the problems of excessive wastewater and inability to adjust the acidity and alkalinity of existing water purifiers are solved, and weak alkaline small molecular cluster water is generated, thereby improving water quality and health effects.

CN116081844BActive Publication Date: 2025-10-03GUILIN QINGYAN HAOLONG NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202111295530.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-11-03
Publication Date
2025-10-03
Estimated Expiration
2041-11-03

AI Technical Summary

Technical Problem

The water purifiers on the market produce a large amount of wastewater during the water purification process and are unable to adjust the acidity and alkalinity of tap water, cannot generate weakly alkaline small molecular cluster water, and cannot meet the needs of the human body.

Method used

It adopts a combination of graphene filter layer, graphene heating module and hydrogenation cup. The graphene filter layer filters impurities, the graphene heating module generates small molecular clusters of water, and the hydrogenation cup makes the water hydrogen-rich. Combined with the intelligent cooling system and dry burning chamber, efficient water purification is achieved.

Benefits of technology

It generates weakly alkaline small molecular cluster water, which is rich in hydrogen and has the ability to eliminate free radicals, improve metabolism and have antibacterial and detoxification capabilities. The water quality is significantly improved and the water purification process is more hygienic.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a graphene water purifier, relating to the field of water purification equipment. It comprises a housing; a graphene filter layer mounted on the top of the housing; a small-cluster water system connected to the graphene filter layer via a pipeline; and an intelligent cooling system connected to the small-cluster water system via a pipeline. The graphene water purifier disclosed in this invention removes impurities and bacteria from tap water and sterilizes it at high temperatures to produce weakly alkaline small-cluster water suitable for the human body, resulting in a healthier drinking experience.
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Description

Technical Field

[0001] The present invention relates to the field of water purification equipment, and in particular to a graphene water purifier. Background Art

[0002] The water purifier is an ideal household water purification device for tap water purification. It can effectively remove rust, sediment, residual chlorine, foreign color and odor, organic matter, heavy metal ions, and insect eggs and red worms larger than 1μm from contaminated tap water that does not meet the safe drinking water standards, thereby greatly improving the water quality.

[0003] The water purifiers on the market are mainly ceramic or reverse osmosis types, which produce a large amount of wastewater during the water purification process and cannot adjust the acidity and alkalinity of tap water to make it more in line with human needs.

[0004] Therefore, it is necessary to provide a graphene water purifier that can generate weakly alkaline small molecular cluster water and make water hydrogen-rich. Summary of the Invention

[0005] In order to solve the above technical problems, the present invention adopts the following technical solutions:

[0006] A graphene water purifier, comprising:

[0007] Box;

[0008] A graphene filter layer, the graphene filter layer being installed on the top of the box;

[0009] A small molecular cluster water system, wherein the small molecular cluster water system is connected to the graphene filter layer pipeline;

[0010] An intelligent cooling system is connected to the small molecular cluster water system pipeline.

[0011] Furthermore, it also includes a water tank, which is installed on the top of the box body and is connected to the graphene filter layer pipeline.

[0012] Furthermore, it also includes a wastewater tank, which is installed at the bottom end of one side of the box body. A wastewater discharge port is provided on one side of the graphene filter layer, and the wastewater tank is connected to the wastewater discharge port pipeline.

[0013] Furthermore, the small molecular cluster water system includes a graphene heating module and a hydrogenation cup. The graphene heating module is installed inside the box and is located on one side of the graphene filter layer. The hydrogenation cup is installed on the lower side of the graphene heating module. A first water outlet is provided at one end of the graphene filter layer. One end of the graphene heating module is connected to the first water outlet pipeline, and the other end is connected to the hydrogenation cup pipeline.

[0014] Furthermore, the intelligent cooling system includes a cooling chamber, a water quality detection device and an intelligent control panel. The water quality detection device is installed on one side of the hydrogenation cup and connected to the hydrogenation cup pipeline. The cooling chamber is installed on the side of the water quality detection device away from the hydrogenation cup. The intelligent control panel is installed on the outside of the box. The water outlet side of the water quality detection device is connected to the cooling chamber pipeline. The intelligent control panel is electrically connected to the cooling chamber, the graphene heating module and the hydrogenation cup.

[0015] Furthermore, a clean water outlet is provided at the bottom end of the cooling chamber.

[0016] Furthermore, the first water outlet and the purified water outlet are both provided with electromagnetic valves, and the electromagnetic valves are both electrically connected to the intelligent control panel.

[0017] Furthermore, it also includes a graphene dry burning chamber, which is installed at the bottom end of the box body and is connected to the cooling chamber pipeline.

[0018] Furthermore, a filter element replacement hole is provided on a side of the box body close to the graphene filter layer.

[0019] Furthermore, a heat dissipation port is provided on one side of the box.

[0020] The beneficial effects of the present invention are:

[0021] The graphene water purifier provided by the present invention is equipped with a graphene heating module and a hydrogenation cup and makes them work together to quickly heat tap water, sterilize it at high temperature and generate weakly alkaline small molecular cluster water. In conjunction with the hydrogenation cup, the tap water is hydrogenated, which brings great benefits to the drinker. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a three-dimensional diagram of a graphene water purifier according to the present invention.

[0023] Figure 2 This is a cross-sectional view of a graphene water purifier according to the present invention.

[0024] Among them, in the figure:

[0025] 1-Box body; 2-Graphene filter layer; 3-Water storage tank; 4-Wastewater tank; 5-Wastewater discharge port; 6-Graphene heating module; 7-Hydrogenation cup; 8-First water outlet; 9-Cooling chamber; 10-Water quality detection device; 11-Intelligent control panel; 12-Water cup placement slot; 13-Purified water outlet; 14-Graphene dry burning chamber; 15-Filter element replacement hole; 16-Heat dissipation port. DETAILED DESCRIPTION

[0026] The following is a combination of the embodiments of the present invention Figure 1-2The technical solutions in the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.

[0027] Example 1

[0028] Combine Figure 1-2 This embodiment provides a graphene water purifier, including a housing 1, a graphene filter layer 2, a small molecular cluster water system and an intelligent cooling system. The graphene filter layer 2 is installed on the top of the housing 1, the small molecular cluster water system is connected to the graphene filter layer 2 by a pipeline, and the intelligent cooling system is connected to the small molecular cluster water system by a pipeline.

[0029] The graphene filter layer 2 is a multi-layer composite structure. In this embodiment, the graphene filter layer has a five-layer structure. The first layer of filter structure material is selected from PP cotton or graphene composite adsorption material, the second layer of filter structure material is selected from ion exchange resin, the third layer of filter structure material is selected from ultrafiltration membrane, the fourth layer of filter structure material is selected from graphene or nano-silver composite filter membrane, and the fifth layer of filter structure material is selected from ultrafiltration membrane; the multi-layer composite structure of the graphene filter layer in this embodiment can improve the water purification efficiency of the graphene filter layer.

[0030] It also includes a water tank 3 and a wastewater tank 4, the water tank 3 is installed at the top of the box body 1, the water tank 3 is connected to the graphene filter layer 2 by a pipeline, and the wastewater tank 4 is installed at the bottom end of one side of the box body 1. An RO membrane is provided on one side of the graphene filter layer 2, and water molecules can pass through the RO membrane, while impurities such as inorganic salts, heavy metal ions, organic matter, colloids, bacteria, viruses, etc. in the source water cannot pass through the RO membrane, thereby strictly distinguishing between pure water that can pass through and concentrated water that cannot pass through; a wastewater discharge port 5 is provided on one side of the graphene filter layer 2 and the wastewater discharge port is located under the RO membrane, and the wastewater tank 4 is connected to the wastewater discharge port 5 by a pipeline, and wastewater that cannot pass through the graphene filter layer 2 and the RO membrane is discharged through the wastewater discharge port 5; when in use, the wastewater after the tap water is purified and filtered by the graphene filter layer and the RO membrane is discharged into the wastewater tank through the wastewater discharge port.

[0031] The small molecular cluster water system includes a graphene heating module 6 and a hydrogenation cup 7. The graphene heating module 6 is installed inside the box 1 and is located on one side of the graphene filter layer 2. The hydrogenation cup 7 is installed on the lower side of the graphene heating module 6. A first water outlet 8 is provided at one end of the graphene filter layer 2. One end of the graphene heating module 6 is connected to the first water outlet 8 by a pipeline, and the other end is connected to the hydrogenation cup 7 by a pipeline. The graphene heating module adopts a graphene flexible electric heating film material. Under the action of the electric field, the carbon molecular clusters in the heating element produce Brownian motion, and violent friction and collision are generated between the carbon molecules. The generated heat energy is transmitted to the outside in the form of far-infrared radiation and convection. The action of the carbon molecules causes the surface of the system to heat up rapidly, thereby heating the water in the graphene heating module and generating small molecular cluster water. The small molecular cluster water has a good taste and a high oxygen content. High, and has many benefits to the human body. After being heated by the graphene heating module, the small molecular cluster water enters the hydrogenation cup, and the hydrogenation cup micro-electrolyzes the water. When the current passes through the water, hydrogen is formed at the cathode, generating hydrogen bubbles and dissolving in the water. Hydroxyl ions gather near the cathode, and oxygen is formed at the anode. Hydrogen ions gather near the anode, and positively charged metal ions move toward the cathode; positively charged ions such as minerals such as calcium, magnesium, potassium, and sodium dissolved in the water gather at the cathode and form alkaline water with the hydroxide ions gathered near the cathode, eventually making the water rich in hydrogen. The hydrogenation cup contains a variety of ions with different potential values, but there are more negative hydroxide ions, which makes the alkaline water discharged from the cathode have a negative potential and is reducing. It can quickly eliminate 70% of free radicals in the blood throughout the body, has disease prevention and anti-aging effects, and improves the body's metabolism and antibacterial and detoxification capabilities while stabilizing the small molecular cluster water.

[0032] The intelligent cooling system includes a cooling chamber 9, a water quality detection device 10 and an intelligent control panel 11. The water quality detection device 10 is installed on one side of the hydrogenation cup 7 and is connected to the hydrogenation cup 7 through a pipeline. The cooling chamber 9 is installed on the side of the water quality detection device 10 away from the hydrogenation cup 7. The intelligent control panel 11 is installed on the outside of the box 1. The water quality detection device 10 is connected to the hydrogenation cup 7 through a pipeline. The water outlet side of the water quality detection device 10 is connected to the cooling chamber 9 through a pipeline. The intelligent control panel 11 is electrically connected to the cooling chamber 9. The cooling temperature of the cooling chamber can be set by controlling the intelligent control panel.

[0033] A clean water outlet 13 is provided at the bottom of the cooling chamber 9 . Both the first water outlet 8 and the clean water outlet 13 are provided with electromagnetic valves, and both the electromagnetic valves are electrically connected to the intelligent control panel 11 .

[0034] In this embodiment, the intelligent control panel 11 is provided with a filtration and purification button, a graphene heating and purification button, a temperature adjustment button and a water discharge button, and the cooling temperature in the cooling chamber is set by the temperature adjustment button; when the water discharge button is pressed, the electromagnetic valve at the clean water outlet opens and the water discharge operation is performed; when the filtration and purification button is pressed, the electromagnetic valve at the first water outlet opens, and the graphene heating module and the hydrogenation cup both work, and only the tap water is subjected to graphene filtration treatment; when the graphene heating and purification button is pressed, the electromagnetic valve at the first water outlet opens, and the tap water is purified by the graphene filtration layer, and then processed by the graphene heating module and the hydrogenation cup in turn, and then the water quality is tested by the water quality detection device, and finally flows to the cooling chamber for cooling before drinking.

[0035] Furthermore, it also includes a graphene dry burning chamber 14, which is installed at the bottom end of the box body 1. The graphene dry burning chamber 14 is connected to the cooling chamber 9 through a pipeline. The high-temperature steam generated by the electric heating of the graphene dry burning chamber can sterilize and disinfect the entire water flow pipeline; as an optimization, a one-way valve is provided in the pipeline connecting the graphene dry burning chamber and the cooling chamber to prevent water in the cooling chamber from entering the graphene dry burning chamber.

[0036] Furthermore, a filter element replacement hole 15 is provided on one side of the box body 1 close to the graphene filter layer 2, and a heat dissipation port 16 is provided on one side of the box body 1; in this embodiment, a sealing rubber sleeve is provided inside the filter element replacement hole, and when the graphene filter layer needs to be replaced, the sealing rubber sleeve is removed for replacement, and by arranging the heat dissipation port on one side of the box body, the heat dissipation port is separated from the internal pipeline to avoid the influence of the external environment on the internal pipeline.

[0037] As an optimization, a water cup placement groove 12 is provided at the bottom of the box body in this embodiment. The water cup placement groove 12 is provided at the bottom of the purified water outlet 13 to facilitate water collection.

[0038] In this embodiment, the box body, water storage tank and each connecting pipe are made of one or a combination of transparent glass and PPC materials to make the internal filtering effect visible.

[0039] The graphene water purifier described in this embodiment has two water purification modes when working normally. One is that tap water enters the graphene filter layer for filtration and purification, and the purified water flows into the water quality detection device and undergoes water quality detection, and finally flows into the cooling chamber. The tap water is physically purified and is directly available for drinking; the other is that the tap water is purified by the graphene filter layer, and then processed by the graphene heating module and the hydrogenation cup in turn to generate weakly alkaline and hydrogenated small molecular cluster water, and after water quality detection by the water quality detection device, it finally flows into the cooling chamber for cooling and waiting for use; both water purification modes are subject to the sterilization and disinfection effect of the graphene dry burning chamber.

[0040] The graphene water purifier described in the present invention filters out various impurities and bacteria by providing a graphene filter layer; by providing a graphene heating module and a hydrogenation cup and making them work together, tap water is quickly heated, sterilized at high temperature and weakly alkaline small molecular cluster water is generated, and the tap water is hydrogenated in conjunction with the hydrogenation cup, which greatly benefits the drinker; by providing a graphene dry burning chamber, the high-temperature steam generated by electrically heating the graphene dry burning chamber can achieve sterilization and disinfection of the entire water flow pipeline, making the entire process more hygienic.

[0041] Example 2

[0042] The difference between this embodiment and embodiment one is that, in this embodiment, there is no need to set an RO membrane inside the graphene filter layer. Instead, a second water inlet is set on one side of the graphene filter layer. The second water inlet is provided with a valve. The second water inlet is used to fill washing water into the graphene filter layer. When the second water inlet fills washing water into the graphene filter layer, the raw water side of the graphene filter layer is flushed to achieve a self-cleaning effect. The washing water filled into the second water inlet flushes and discharges the intercepted dirt, which is more convenient to use and does not require manual disassembly and cleaning.

[0043] The above description of the disclosed embodiments is intended to enable one skilled in the art to implement or use the present invention. Various modifications to the above embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not limited to the embodiments shown herein but is to be construed in the widest possible manner consistent with the principles and novel features disclosed herein.

Claims

1. A graphene water purifier, characterized in that: include: Box; A graphene filter layer, the graphene filter layer being installed on the top of the box; A small molecular cluster water system, wherein the small molecular cluster water system is connected to the graphene filter layer pipeline; An intelligent cooling system, the intelligent cooling system being connected to the small molecular cluster water system pipeline; The small molecular cluster water system includes a graphene heating module and a hydrogenation cup. The graphene heating module is installed inside the box and is located on one side of the graphene filter layer. The hydrogenation cup is installed on the lower side of the graphene heating module. A first water outlet is provided at one end of the graphene filter layer. One end of the graphene heating module is connected to the first water outlet pipeline, and the other end is connected to the hydrogenation cup pipeline. The intelligent cooling system includes a cooling chamber, a water quality detection device, and an intelligent control panel. The water quality detection device is installed on one side of the hydrogenation cup and connected to the hydrogenation cup pipeline. The cooling chamber is installed on the side of the water quality detection device away from the hydrogenation cup. The intelligent control panel is installed outside the box. The water outlet side of the water quality detection device is connected to the cooling chamber pipeline. The intelligent control panel is electrically connected to the cooling chamber, the graphene heating module, and the hydrogenation cup. It also includes a graphene dry burning chamber, which is installed at the bottom end of the box body and is connected to the cooling chamber pipeline.

2. A graphene water purifier according to claim 1, characterized in that: It also includes a water tank, which is installed on the top of the box body and is connected to the graphene filter layer pipeline.

3. A graphene water purifier according to claim 2, characterized in that: It also includes a wastewater tank, which is installed at the bottom end of one side of the box body. A wastewater discharge port is provided on one side of the graphene filter layer, and the wastewater tank is connected to the wastewater discharge port pipeline.

4. A graphene water purifier according to claim 1, characterized in that: A clean water outlet is provided at the bottom end of the cooling chamber.

5. A graphene water purifier according to claim 4, characterized in that: The first water outlet and the purified water outlet are both provided with electromagnetic valves, and the electromagnetic valves are both electrically connected to the intelligent control panel.

6. The graphene water purifier according to claim 1, characterized in that: A filter element replacement hole is provided on one side of the box body close to the graphene filter layer.

7. The graphene water purifier according to claim 1, characterized in that: A heat dissipation port is provided on one side of the box body.

Citation Information

Patent Citations

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