Pseudo-antenna Surface Annealing for EMF Mitigation

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Solution Overview

Problem

Existing antennas and pseudo-antennas fail to effectively mitigate both high and low intensity electromagnetic field (EMF) radiation, which can harm humans and animals, and lack compatibility across various article types.

Innovation Solution

A pseudo-antenna system is developed using a substrate with a surface layer of tetrel-based or metal materials, annealed by a static pulse from a Tesla emitter with specific carrier waves, resulting in a normalized unit structure with phonon effects and imperfect harmonic interaction, capable of mitigating EMF radiation.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Object-affected harmful factors

If existing antennas are used to mitigate EMF radiation, then some radiation protection is provided, but they fail to effectively mitigate both high and low intensity EMF radiation and lack compatibility across various article types

Engineering Contradiction:
ImproveEMF radiation impactVSAvoidcompatibility across article types
Core Design Contradiction:
Object-affected harmful factorsVSAdaptability or versatility

Solution Approach 1:

The patent applies universality by creating a pseudo-antenna system that can be integrated into multiple different article types (clothing, accessories, electronics) while maintaining consistent EMF mitigation functionality. The system uses a standardized substrate with surface layer that can be adapted to various forms and applications, enabling one core technology to serve multiple purposes and product categories.

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

Solution Approach 2:

The patent employs parameter changes by modifying the physical and chemical properties of the surface layer through annealing treatment. The annealing process alters the crystalline structure and electrical properties of the tetrel-based or metal materials, transforming them into a state that provides effective EMF radiation mitigation across different intensity levels while maintaining material compatibility.

Inventive Principle:
Principle #35Parameter changes

2Object-affected harmful factors

If conventional antenna designs are used, then structural simplicity is maintained, but they fail to provide effective mitigation for both high and low intensity EMF radiation

Engineering Contradiction:
ImproveEMF radiation mitigation effectivenessVSAvoidantenna structure complexity
Core Design Contradiction:
Object-affected harmful factorsVSDevice complexity

Solution Approach 1:

The patent applies local quality by creating a specialized surface layer with specific material composition (tetrel-based or metal materials) and structured properties through annealing. This localized treatment of the substrate surface provides the necessary EMF mitigation functionality without requiring complex overall device architecture, concentrating the functional properties in the surface layer while keeping the bulk structure simple.

Inventive Principle:
Principle #3Local quality

3Object-affected harmful factors

If standard manufacturing processes are used for antennas, then production efficiency is maintained, but the resulting antennas cannot create the normalized unit structure with phonon effects needed for effective EMF mitigation

Engineering Contradiction:
ImproveEMF radiation reduction capabilityVSAvoidsurface layer structure precision
Core Design Contradiction:
Object-affected harmful factorsVSManufacturing precision

Solution Approach 1:

The patent applies preliminary action by performing annealing treatment on the surface layer during the manufacturing process to pre-establish the normalized unit structure with phonon effects before the product is put into service. This preliminary structural preparation ensures that the EMF mitigation functionality is inherent to the material structure itself, eliminating the need for complex post-manufacturing adjustments or activations.

Inventive Principle:
Principle #10Preliminary action

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 pseudo-antenna system effectively reduces the negative impacts of EMF radiation, improving human and animal health by enhancing balance, flexibility, energy, strength, recovery, and reducing stress, while being compatible with diverse article types.

Implementation Method 1

The surface layer is annealed by application of a static pulse from a Tesla emitter at ambient conditions

Methodology Applied
Scientific EffectAnnealing: Annealing

Implementation Method 2

The static pulse includes a carrier wave selected from the group consisting of waves with a frequency (f) expressed in Hertz represented by the following vector equation: f=(1,7,4)+(1,1,1) MOD 9

Methodology Applied
Scientific EffectElectromagnetic radiation: Electromagnetic Induction

Implementation Method 3

the surface layer presents a normalized unit structure having at least one phonon representing a micro-crystal surface effect and absorption band

Methodology Applied
Scientific EffectPhonon absorption: Absorption (EM radiation)

Data Source

PatentUS9105958B2Pseudo-antenna and system and method for manufacture of the same
Publication Date: 2015.08.11 LIVE LONGER
  • US9105958B2 patent drawing
  • US9105958B2 patent drawing
  • US9105958B2 patent drawing

AI summary

A pseudo-antenna and system and method for manufacturing the same are disclosed. In one embodiment of the pseudo-antenna, a substrate is provided including a surface layer selected from the group consisting of tetrel-based and metal materials. The surface layer is annealed by application of a static pulse from a Tesla emitter at ambient conditions. The surface layer presents a normalized unit structure having at least one phonon representing a micro-crystal surface effect and absorption band. Further, the surface layer presents imperfect harmonic interaction with the carrier wave.