Protonated Small-Molecule Water Clusters for Stable Storage
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Solution Overview
Problem
Existing methods for producing small-molecule water are difficult to scale up and result in unstable structures that degrade quickly, limiting their industrial application and health benefits.
Innovation Solution
A method involving atomization of purified water, generation of positively charged hydrogen ions, and mixing to form stable small-molecule clusters of 2-6 water molecules around the hydrogen ions, using a strong electric field to enhance stability and longevity.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Stability of the object's composition
If traditional methods are used to produce small-molecule water, then the water clusters are broken down, but the structure is unstable and degrades quickly
Solution Approach 1:
The patent introduces negatively charged oxygen ions (O2-) as intermediary particles to mediate the bonding between water molecules. These oxygen ions act as structural bridges that hold water molecules together in stable small clusters of 2-6 molecules, preventing the rapid degradation that occurs in traditionally produced small-molecule water. The oxygen ions serve as a stabilizing agent that maintains the integrity of the water clusters during storage.
Solution Approach 2:
The invention creates a composite water structure consisting of water molecules (H2O) combined with negatively charged oxygen ions (O2-). This composite structure forms a new type of small-molecule water where the oxygen ions are integrated into the cluster architecture, providing enhanced stability and longevity compared to pure water clusters produced by conventional methods.
2Stability of the object's composition
If macromolecular water clusters are used, then the water is stable, but permeability and solubility are very low
Solution Approach 1:
The patent changes the fundamental parameters of water structure by introducing negatively charged oxygen ions and applying specific electromagnetic frequencies (14-28 MHz). These parameter changes result in water clusters of 2-6 molecules with enhanced permeability properties while maintaining stability, overcoming the trade-off between cluster size and biological activity.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
The method produces stable small-molecule water that can be stored for extended periods and effectively absorbed by the body, improving health through enhanced hydration, nutrient solubility, and detoxification.
Implementation Method 1
generating a strong electric field at the needle tip of the hollow emission needle, ionizing the atomized water vapor to form a positively charged hydrogen ion
Implementation Method 2
mixing the hydrogen ions and the water vapor to form small-molecule clusters of 2-6 water molecules around the hydrogen ions
Data Source
AI summary
Drinking water, which specifically refers to proton-attached small-molecule drinking water, a preparation method therefor and an application occasion thereof. Small-molecule cluster water thereof is formed by distributing two to six water molecules around one H+. The small-molecule cluster water is atomized by running ordinary water through an atomizing device (30); the water is passed through an atomized water channel (60), sent to a hydrogen ion generating region (50), and is then mixed in a hydrogen ion and water vapor mixing region (150) of a mixing device (40). The advantages are: the small-molecule drinking water has a stable structure, and may be stored for a long time; the preparation method may be large-scale and has a wide range of practical application value; and drinking the small-molecule drinking water has a good effect on improving human health.


