Small molecular group water production equipment and novel process for cutting water molecules by far infrared rays
The far-infrared rays and electron flow generated by pegmatite resonance cut water molecules to form small molecular mass water, solving the problems of high production costs and low yields in the existing technology, achieving efficient and low-cost water molecular mass cutting and stabilization, and having the effect of cell repair and metabolism promotion.
Patent Information
- Application Number
- CN202510808804.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-17
- Publication Date
- 2025-07-18
AI Technical Summary
In the prior art, the process of cutting water molecular groups is complex, the production cost is high, and the yield is low, and the water of small molecular groups becomes free radicals and is difficult to stabilize.
Small-molecular group water production equipment is used to generate long-wave far-infrared rays and negative ion water resonate with pegmatite, causing water molecules to break from weak hydrogen bonds, form small-molecular group water, and eliminate free radicals through electron flow, and use far-infrared photoelectric generators and pegmatite particles to perform water treatment in the tank.
It has achieved efficient and low-cost production of small molecular mass water, high yield, and can stabilize small molecular mass water, and has the functions of repairing cells, renewing cells, promoting blood circulation and metabolism.
Smart Images

Figure CN120328677A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water treatment, specifically to a small molecule cluster water production device and a new process for cutting water molecules by far-infrared rays. Background Art
[0002] The diameter of a water molecule is 4 to 6 nanometers. Generally, more than 13 water molecules aggregate together to form a large molecule cluster. To cut it into smaller water molecule clusters, a very special process is required. Through research and consulting relevant materials, the inventor of this application found that the current process for cutting water molecule clusters is complex, with high production costs, low output, and poor efficiency. There is an urgent need to develop a new process for cutting water molecules and a small molecule cluster water production device with high production efficiency, low production costs, and high output.
[0003] In addition, the small water molecule clusters cut by the cutting technology are polar, and many small water molecule clusters become free radicals. To remove the polarity and become stable small water molecule clusters, a bionic electron flow is required. There is no mature solution in the prior art to solve the problem of small water molecule clusters becoming free radicals through bionic electron flow. Summary of the Invention
[0004] To solve the above problems, the present invention provides a small molecule cluster water production device and a new process for cutting water molecules by far-infrared rays.
[0005] The technical solution adopted by the present invention to solve its technical problems is: a small molecule cluster water production device, including a tank body, on which a negative ion water inlet, an air outlet, and a small molecule cluster water outlet are provided. Inside the tank body, there is pegmatite, which is used to generate long-wave far-infrared rays to resonate with the negative ion water entering from the negative ion water inlet, causing the water molecules to break at the weak hydrogen bonds to form small molecule cluster water; The air outlet is used to discharge the gas generated during the production process of small molecule cluster water; The small molecule cluster water outlet is used to discharge the formed small molecule cluster water.
[0006] Preferably, the pegmatite also generates an electron flow for eliminating free radicals.
[0007] Preferably, the voltage of the electron flow generated by the pegmatite is 1 mV, and the current intensity is 0.06 mA.
[0008] Preferably, the granular pegmatite is installed in a far-infrared photoelectric generator, and the far-infrared photoelectric generator is placed inside the tank body.
[0009] Preferably, one or more far-infrared photoelectric generators filled with pegmatite particles are provided inside the tank body.
[0010] Preferably, the negative ion water inlet and the air outlet are arranged on the side surface or the top surface of the tank body, and the small molecule cluster water outlet is arranged on the side surface or the bottom surface of the tank body.
[0011] Preferably, the negative ion water inlet and the air outlet are arranged on the top surface of the tank body, and the small molecule cluster water outlet is arranged on the bottom surface of the tank body.
[0012] Preferably, the tank body is in an overall cylindrical structure or a cuboid structure.
[0013] Preferably, a tank body support is arranged on the bottom surface of the tank body.
[0014] The present invention also discloses a new process for cutting water molecules by far infrared rays, comprising the following steps: S1: Place a far infrared photoelectric generator equipped with pegmatite particles into the tank body; S2: Close the small molecule cluster water outlet, add water into the tank body through the negative ion water inlet, and stop adding water after the added water reaches the set capacity; S3: Start the far infrared photoelectric generator, and turn off the far infrared photoelectric generator after a set time; S4: Open the small molecule cluster water outlet to discharge the small molecule cluster water.
[0015] Preferably, in S2, stop adding water after adding 30 tons, and turn off the far infrared photoelectric generator after half an hour after it is started.
[0016] The beneficial effects of this solution are as follows: This small molecule cluster water production equipment and the new process for cutting water molecules by infrared rays have high production efficiency, low production cost and high output. Description of the Drawings
[0017] Figure 1 It is a schematic diagram of the small molecule cluster water production equipment of the present invention.
[0018] Wherein, 1, tank body; 2, negative ion water inlet; 3, air outlet; 4, small molecule cluster water outlet; 5, pegmatite. Detailed Embodiments
[0019] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the inventive product is customarily placed during use. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the present invention. In addition, the terms "first", "second", "third", etc. are only used for differential description and should not be construed as indicating or implying relative importance.
[0020] As Figure 1 shown, a small cluster water production device includes a tank body 1, on which there are a negative ion water inlet 2, an air outlet 3, and a small cluster water outlet 4. Inside the tank body 1, there is pegmatite, and the pegmatite 5 is used to generate long-wave far-infrared rays. The transverse waves of the long-wave far-infrared rays resonate with the negative ion water entering from the negative ion water inlet, causing adjacent water molecules to break at the weak hydrogen bonds, and every 4 to 6 water molecules recombine to form small cluster water. Specifically, the particles of the pegmatite 5 are packed in a far-infrared photoelectric generator, and the far-infrared photoelectric generator is placed inside the tank body.
[0021] The air outlet 3 is used to discharge the gas generated during the production process of small cluster water; The small cluster water outlet 4 is used to discharge the formed small cluster water.
[0022] Among them, the pegmatite 5 is selected from the rocks mined in Qingzhou City, Shandong Province. The pegmatite 5 also generates an electron flow for eliminating free radicals.
[0023] In order to make the far-infrared photoelectric generator with the particles of the pegmatite 5 better play its role, one or two or three or more far-infrared photoelectric generators filled with the particles of the pegmatite 5 are provided inside the tank body. The far-infrared photoelectric generator can be directly placed at the bottom of the tank body 1, or a far-infrared photoelectric generator support can be provided inside the tank body, and the far-infrared photoelectric generator is placed on the far-infrared photoelectric generator support to facilitate the far-infrared photoelectric generator to better cut the water.
[0024] In this embodiment, the negative ion water inlet 2 and the air outlet 3 are provided on the top surface of the tank body 1, and the small cluster water outlet 4 is provided on the bottom surface of the tank body 1. In this embodiment, the tank body is of a cylindrical structure as a whole. Of course, the tank body can also be designed into a cuboid structure. In order to better place the tank body, a tank body support can also be provided on the bottom surface of the tank body 1.
[0025] Of course, the negative ion water inlet and the air outlet are provided on the side or top surface of the tank body, and the small molecule cluster water outlet is provided on the side or bottom surface of the tank body.
[0026] The present invention also discloses a new process for cutting water molecules by infrared rays, comprising the following steps: S1: Place the far-infrared photoelectric generator containing 5 particles of pegmatite into the tank body; S2: Close the small molecule cluster water outlet, add water into the tank body through the negative ion water inlet, and stop adding water after the added water reaches the set capacity; S3: Start the far-infrared photoelectric generator, and turn off the far-infrared photoelectric generator after a set time; S4: Open the small molecule cluster water outlet to discharge the small molecule cluster water.
[0027] Preferably, in S2, stop adding water after adding 30 tons, and turn off the far-infrared photoelectric generator after half an hour after it is started.
[0028] This small molecule cluster water production equipment and the new process for cutting water molecules by infrared rays have high production efficiency, low production cost, and high output.
[0029] The small molecule cluster water produced by this small molecule cluster water production equipment and the new process for cutting water molecules by infrared rays can repair cells, renew cells, activate cells, promote blood circulation, and promote metabolism.
[0030] The principle of the new process for cutting water molecules by infrared rays in the present invention is as follows: By placing the far-infrared photoelectric generator containing 5 particles of pegmatite into the water in the tank body, through stirring the water body, the far-infrared photoelectric generator emits long-wave far-infrared rays and electron flows, causing adjacent water molecules to break at the weak hydrogen bonds, and eliminating free radicals through the electron flows to form small molecule cluster water.
[0031] Perform an alcohol decomposition test on the small molecule cluster water and tap water produced by the above method: Experimental conditions: normal temperature of 33 degrees. Experimental supplies: two portions of 210 ml of 55-degree white liquor, 50 ml of tap water, 50 ml of small molecule cluster water, 2 alcohol meters, 2 glass measuring cups, and 1 thermometer.
[0032] Experimental method: Inject 50 ml of tap water and 50 ml of small molecule cluster water into two static glass measuring cups containing 210 ml of 55-degree white liquor respectively, and measure the alcohol content in the two measuring cups again after standing for 1 hour.
[0033] It can be seen from the above experimental results that the small molecule cluster water has a good effect of decomposing alcohol.
[0034] In addition, through detection, the oxygen spectrum half-peak width value of the small molecule cluster water of this patented technology is 89.58 Hz, which meets the small molecule cluster water standard. The small molecule cluster water standard is from 90 Hz to 70 Hz.
[0035] The above specific embodiments are only specific cases of the present invention. The patent protection scope of the present invention includes, but is not limited to, the product forms and patterns of the above specific embodiments. Any water molecule cluster cutting device and small molecule cluster water preparation method that meet the claims of the present invention and any appropriate changes or modifications made by those of ordinary skill in the relevant technical fields shall fall within the patent protection scope of the present invention.
Claims
1. A small cluster water production device, comprising a tank body, on which there are a negative ion water inlet, an air outlet and a small cluster water outlet. Inside the tank body, there is pegmatite, which is used to generate far-infrared rays of long wavelength to resonate with the negative ion water entering from the negative ion water inlet, so that adjacent water molecules break from the weak hydrogen bonds to form small cluster water; The air outlet is used to discharge the gas generated during the production process of small cluster water; The small cluster water outlet is used to discharge the formed small cluster water.
2. The small-molecule cluster water production equipment according to claim 1, characterized in that, The pegmatite also generates an electron flow for eliminating free radicals.
3. The small-molecule cluster water production device according to claim 1, wherein The particles of the pegmatite are loaded in a far-infrared photoelectric generator, and the far-infrared photoelectric generator is placed inside the tank body.
4. The small-molecule cluster water production equipment according to claim 4, characterized in that, The pegmatite is the pegmatite rock mined in Qingzhou City, Shandong Province.
5. The small-molecule cluster water production device according to claim 1, characterized in that, The negative ion water inlet and the air outlet are arranged on the side or top surface of the tank body, and the small cluster water outlet is arranged on the side or bottom surface of the tank body.
6. The small molecule cluster water production equipment according to claim 5, characterized in that, The negative ion water inlet and the air outlet are arranged on the top surface of the tank body, and the small cluster water outlet is arranged on the bottom surface of the tank body.
7. A new process for cutting water molecules by far-infrared rays, characterized in that, Using the small cluster water production device according to any one of claims 1 to 7, comprising the following steps: S1: Put the far-infrared photoelectric generator containing pegmatite particles into the tank body; S2: Close the small cluster water outlet, add water into the tank body through the negative ion water inlet, and stop adding water after the added water reaches the set capacity; S3: Start the far-infrared photoelectric generator, and turn off the far-infrared photoelectric generator after a set time; S4: Open the small cluster water outlet to discharge the small cluster water.
8. A new process for cutting water molecules by infrared rays according to claim 7, characterized in that, In S2, stop adding water after adding 30 tons, and turn off the far-infrared photoelectric generator after half an hour after it is started.
Citation Information
Patent Citations
High-energy alkalescent small molecular grouping water generation equipment
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CN205590354U