Two-Reactor Electromagnetic System for Load-Specific Power Tuning

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Solution Overview

Problem

Existing power supply and conversion systems that utilize electromagnetic induction face inefficiencies and limitations in providing power to loads, particularly in varying voltage and frequency conditions, and lack effective methods to enhance power intensity and synchronization with loads.

Innovation Solution

A system comprising two reactors, where a main reactor generates a magnetic field and a resonating reactor tunes and increases the intensity of the magnetic fields to match the load, accompanied by a smart inverter for synchronization and power regulation, allowing for efficient power delivery across different voltage and frequency loads.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Device complexity

If a single reactor is used to provide power to the load, then the system structure is simple, but the power delivery efficiency and adaptability to varying loads are insufficient

Engineering Contradiction:
Improvesystem structureVSAvoidpower delivery efficiency
Core Design Contradiction:
Device complexityVSProductivity

Solution Approach 1:

The power supply system is divided into two separate reactors: a first reactor for generating power and a second reactor for tuning and enhancing the magnetic fields. This segmentation allows each reactor to be optimized for its specific function, improving overall power delivery efficiency while maintaining manageable system complexity through modular design.

Inventive Principle:
Principle #1Segmentation

Solution Approach 2:

The patent combines the functions of power generation and magnetic field enhancement into an integrated two-reactor system. The first reactor generates power while the second reactor simultaneously tunes and enhances the magnetic fields, creating a synergistic effect that improves power delivery efficiency without requiring completely separate systems.

Inventive Principle:
Principle #5Merging (Combining)

2Adaptability or versatility

If the magnetic field intensity is increased to match varying loads, then the adaptability to different voltage and frequency loads is improved, but the energy loss increases

Engineering Contradiction:
Improveadaptability to loadsVSAvoidenergy loss
Core Design Contradiction:
Adaptability or versatilityVSLoss of energy

Solution Approach 1:

The system employs dynamic adjustment of magnetic field intensity through the second reactor, which can vary its output to match the specific voltage and frequency requirements of different loads. This dynamic adaptation allows the system to optimize performance for each load condition while minimizing energy loss by avoiding excessive field intensity.

Inventive Principle:
Principle #15Dynamics

Solution Approach 2:

The patent implements a feedback mechanism where the system monitors load conditions and adjusts the magnetic field intensity accordingly. The smart inverter and control systems continuously regulate the reactors' output to match actual load demands, preventing energy waste from over-supply while maintaining adaptability to varying load requirements.

Inventive Principle:
Principle #23Feedback

3Ease of operation

If the reactors operate without precise tuning to the load, then the system operation is simple, but the power delivery efficiency and synchronization are insufficient

Engineering Contradiction:
Improvesystem operationVSAvoidpower delivery efficiency
Core Design Contradiction:
Ease of operationVSProductivity

Solution Approach 1:

The second reactor is designed to automatically tune and enhance the magnetic fields from the first reactor based on load conditions. The system performs self-adjustment through the inherent resonant properties of the reactors and control circuits, eliminating the need for manual tuning while maintaining high power delivery efficiency and synchronization with varying loads.

Inventive Principle:
Principle #25Self-service

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 system enhances power delivery efficiency by increasing magnetic field intensity and synchronizing with loads, ensuring reliable and adaptable power supply to various electrical devices and grids, while maintaining system parameters and minimizing energy loss.

Implementation Method 1

a first coil configured to generate a first magnetic field

Methodology Applied
Scientific EffectElectromagnetic induction: Electromagnetic Induction

Implementation Method 2

at least one second coil configured to generate a plurality of second magnetic fields that vary an intensity of the first magnetic field

Methodology Applied
Scientific EffectElectromagnetic induction: Electromagnetic Induction

Implementation Method 3

a second reactor comprising at least one second reactor coil configured to tune the first reactor to the load

Methodology Applied
Scientific EffectResonance: Resonance

Data Source

PatentEP3017455B1Electromagnetic energy-flux reactor
Publication Date: 2020.04.08 EYALES BONIFACIO J
  • EP3017455B1 patent drawingFigure 1~2
  • EP3017455B1 patent drawingFigure 3
  • EP3017455B1 patent drawingFigure 4

AI summary

Systems and methods for providing power to a load are provided. One system includes a first reactor including a first plurality of coils. A first coil of the first plurality of coils is configured to generate a first magnetic field, and a plurality of second coils of the first plurality of coils are configured to generate a plurality of second magnetic fields that vary an intensity of the first magnetic field. The system further comprises a second reactor comprising a second plurality of coils, wherein the second plurality of coils are configured to tune the first reactor to the load. The first reactor is configured to provide the power to the load, and the second reactor is configured to increase the power provided to the load by increasing an intensity of the second magnetic fields generated by the second coils and tuning the first reactor to the load.