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

VSEngineering 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

Engineering Contradiction:
Improvestability of small-molecule water structureVSAvoidstorage longevity of water
Core Design Contradiction:
Stability of the object's compositionVSDuration of action of stationary object

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.

Inventive Principle:
Principle #24Intermediary (Mediator)

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.

Inventive Principle:
Principle #40Composite materials

2Stability of the object's composition

If macromolecular water clusters are used, then the water is stable, but permeability and solubility are very low

Engineering Contradiction:
Improvestability of water structureVSAvoidpermeability and absorption rate
Core Design Contradiction:
Stability of the object's compositionVSSpeed

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.

Inventive Principle:
Principle #35Parameter changes

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

Methodology Applied
Scientific EffectIonization: Ionisation

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

Methodology Applied
Scientific EffectElectrostatic attraction: Electrostatics

Data Source

PatentUS12371351B2Protonated small-molecule drinking water, preparation method and application
Publication Date: 2025.07.29 HANGZHOU SHANSHANGSHUI TECH CO LTD
  • US12371351B2 patent drawing
  • US12371351B2 patent drawing
  • US12371351B2 patent drawing

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.