Golden Section Harmonization Device for Mechanical and Electromagnetic Oscillations

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Solution Overview

Problem

Current methods fail to universally and effectively harmonize both mechanical and electromagnetic oscillatory behavior in objects made of various materials, leading to inefficient energy transfer and suboptimal performance.

Innovation Solution

A device with specific dimensional ratios based on the golden section (Φ) and π, using copper and steel materials to create resonant and dissonant interactions, optimizing the overlap of resonant and dissonant oscillatory components for improved energy absorption and transfer.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Reliability

If conventional methods are used to harmonize oscillations, then mechanical oscillations may be improved, but electromagnetic oscillations remain unharmonized

Engineering Contradiction:
Improveoscillation harmonization effectivenessVSAvoidapplicability to both mechanical and electromagnetic systems
Core Design Contradiction:
ReliabilityVSAdaptability or versatility

Solution Approach 1:

The device is designed with a universal structure comprising a body with specific geometric dimensions and materials that can harmonize both mechanical and electromagnetic oscillations simultaneously. The body includes a first portion and a second portion with specific dimensional relationships that create both mechanical resonance and electromagnetic resonance effects, allowing one device to serve multiple functions across different oscillation types.

Inventive Principle:
Principle #6Universality (Multi-functionality)

2Reliability

If the device uses specific dimensional ratios based on golden section and π, then oscillation harmonization is improved, but manufacturing precision requirements increase

Engineering Contradiction:
Improveoscillation harmonization qualityVSAvoiddimensional ratio accuracy
Core Design Contradiction:
ReliabilityVSManufacturing precision

Solution Approach 1:

The device specifies critical dimensional parameters including the ratio between the length and diameter of the body, the ratio between the lengths of the first and second portions, and the ratio between the diameter and height. These parameters are defined to follow mathematical relationships involving the golden section Φ and π, which optimizes the harmonization of oscillations by creating specific resonant frequency relationships between different components and modes.

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 device enhances the quality and purity of oscillations, increasing efficiency and sound quality in musical instruments and electromagnetic signals, while optimizing the performance of mechanical and electromagnetic systems by aligning dissonant and resonant components harmonically.

Implementation Method 1

Resonant oscillations are related to each other by frequency ratios defined by integers and fractions thereof (for example 1, 2, 3, 1/2, 1/3, 2/3, 3/4) and provide ideal energy absorption

Methodology Applied
Scientific EffectResonance: Resonance

Implementation Method 2

dissonant oscillations derive from frequency ratios defined by irrational numbers and provide energy transport with low resistance

Methodology Applied
Scientific EffectDissonant oscillations:

Implementation Method 3

the resonance wavelength L of the electrons of an element is given by the following equation: where Z is the atomic number of the element, C e is the Compton wavelength of an electron

Methodology Applied
Scientific EffectElectron resonance:

Data Source

PatentEP2844888B1Device for harmonization of mechanical and electromagnetic oscillations
Publication Date: 2018.08.29 CORFAC2
  • EP2844888B1 patent drawingFigure 1
  • EP2844888B1 patent drawingFigure 2
  • EP2844888B1 patent drawingFigure 3

AI summary

The device (10) comprises an outer body (12) and an inner body (14), both of axially symmetric shape relative to an axis (x). The inner body (14) is received inside a first cavity (20) of the outer body (12) so as to be firmly connected to the latter. The outer body (12) and the inner body (14) are made, respectively, of stainless steel and copper, and preferably have a weight ratio equal to 3 or the number φ (the golden section). The characteristic dimensions of the device (10) are such that their ratios axe either integers, or fractions thereof, or numbers corresponding to powers of Φ and/or of π.