Magnetic Nucleus Combustion Efficiency Optimization

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Solution Overview

Problem

Current technologies fail to efficiently and effectively replace fossil fuels with clean energy sources, particularly in combustion processes, as they either offer modest efficiency improvements or are not commercially viable due to high costs and complexity, and do not address the need for substantial reduction or complete substitution of fossil fuels with hydrogen, which produces only water vapor upon combustion.

Innovation Solution

A device that optimizes the combustion efficiency of hydrogen gas by repeatedly exposing a mixture of oxyhydrogen and ionized air to magnetic fields of variable intensity, orientation, and polarity, combined with dynamic and thermal expansion processes, to reduce the energy state of hydrogen atoms to lower than ground levels, increasing kinetic energy and maintaining this efficiency for subsequent redox processes.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Productivity

If conventional combustion technologies are used to replace fossil fuels with hydrogen, then clean energy production is achieved, but combustion efficiency remains low and volume of gas required is high

Engineering Contradiction:
Improvecombustion efficiencyVSAvoidvolume of hydrogen gas
Core Design Contradiction:
ProductivityVSQuantity of substance

Solution Approach 1:

The patent applies parameter changes by exposing hydrogen gas to magnetic fields of variable intensity, orientation, and polarity, combined with dynamic and thermal expansion processes. These parameter changes reduce the energy state of hydrogen atoms to lower than ground levels, significantly enhancing combustion efficiency and reducing the volume of gas needed for the same energy output.

Inventive Principle:
Principle #35Parameter changes

Solution Approach 2:

The patent employs periodic action through repeated exposure of hydrogen gas to magnetic fields with alternating intensity, orientation, and polarity. This periodic treatment, combined with cyclic dynamic and thermal expansion processes, optimizes the energy state of hydrogen atoms to achieve superior combustion efficiency compared to conventional continuous combustion methods.

Inventive Principle:
Principle #19Periodic action

2Productivity

If existing magnetic field technologies are applied to improve fuel combustion, then modest efficiency improvements are achieved, but device complexity and cost increase significantly

Engineering Contradiction:
Improvecombustion efficiencyVSAvoidsystem complexity
Core Design Contradiction:
ProductivityVSDevice complexity

Solution Approach 1:

The patent segments the magnetic field treatment into distinct phases with variable intensity, orientation, and polarity, applied in sequence rather than as a single complex continuous field. This segmentation, combined with separate dynamic and thermal expansion stages, achieves high combustion efficiency while maintaining manageable device complexity through modular, staged processing.

Inventive Principle:
Principle #1Segmentation

3Object-generated harmful factors

If hydrogen combustion is used to eliminate polluting emissions, then clean energy is produced, but combustion efficiency and energy density are insufficient

Engineering Contradiction:
Improvepolluting gas emissionsVSAvoidenergy density
Core Design Contradiction:
Object-generated harmful factorsVSUse of energy by moving object

Solution Approach 1:

The patent uses parameter changes through magnetic field exposure and thermal expansion to reduce hydrogen atoms to lower than ground energy levels. This creates a highly energized state that dramatically increases energy density upon combustion, producing clean energy with sufficient power density for practical applications.

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

This approach significantly enhances the combustion efficiency of hydrogen gas, eliminates polluting gas emissions, reduces the volume of gas needed, and provides a safe, abundant, and cost-effective clean energy source, suitable for various energy conversion devices and industrial applications, facilitating a transition away from fossil fuels.

Implementation Method 1

The magnetic nucleus is configured to generate and expose the gases within the inlet and outlet ducts to magnetic fields

Methodology Applied
Scientific EffectMagnetic field exposure: Magnetic Field

Implementation Method 2

This accelerates the hydrogen atoms and ions of oxygen and argon present in the ionized air, with a view to reducing the orbit radii of the electrons of the hydrogen atoms

Methodology Applied
Scientific EffectElectron acceleration: Lorentz Force

Implementation Method 3

The alternation of flows between the inlet and outlet ducts and the exposure to magnetic fields promote dynamic and thermal expansions

Methodology Applied
Scientific EffectDynamic expansion: Pressure Gradient

Implementation Method 4

the thermal expansion of the gases when they flow through the heating tower

Methodology Applied
Scientific EffectThermal expansion: Thermal Expansion

Implementation Method 5

Taking into account that the combustion process of the hydrogen results only in water vapor

Methodology Applied
Scientific EffectCombustion: Combustion

Data Source

PatentUS10787958B2System, method, and device to optimize the efficiency of the combustion of gases for the production of clean energy
Publication Date: 2020.09.29 THE BLUEDOT ALLIANCE BV
  • US10787958B2 patent drawing
  • US10787958B2 patent drawing
  • US10787958B2 patent drawing

AI summary

The present invention refers to a system, a method and a device to optimize the efficiency of the combustion of gases for the production of clean energy comprising a magnetic nucleus (30) and inlet and outlet ducts (41a, 42a), the inlet and outlet ducts (41a, 42a) being configured to receive gases, the gases alternately establishing flows between the inlet ducts (41a) and the outlet ducts (42a) and vice-versa, the magnetic nucleus (30) being configured to generate and to expose the gases within the inlet and outlet ducts (41a, 42a) to magnetic fields (35), the alternation of flows between the inlet and outlet ducts (41a, 42a) and the exposure to magnetic fields (35) promoting acceleration of the hydrogen atoms and ions of oxygen and argon, promoting the reduction of the radii of the orbits of the electrons of the hydrogen around their nuclei and provoking the release of potential energy of the electrons and corresponding increase of the kinetic energy of the nuclei of the gas molecules, in such a way to optimize (increase) the heating power of the gases (201, 202).