Electric Blackhole Radiation Absorption Across Wide Frequencies

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Solution Overview

Problem

Existing radiation absorption systems are limited by their narrow range of electromagnetic wave frequencies and efficiency, necessitating a more robust system capable of absorbing a wide range of frequencies with high efficiency.

Innovation Solution

Employing an electrostatic blackhole mechanism with highly compressed electron charges enclosed in a transparent container, utilizing the properties of electric blackholes to trap electromagnetic radiation within a defined boundary, preventing its escape and allowing for efficient absorption across a wide frequency spectrum.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Adaptability or versatility

If traditional radiation absorption materials (pyramidal foam, ferrite tiles, iron ball paint) are used, then radiation absorption is achieved at specific frequencies, but the frequency range is narrow and efficiency is limited

Engineering Contradiction:
Improvefrequency rangeVSAvoidabsorption efficiency
Core Design Contradiction:
Adaptability or versatilityVSReliability

Solution Approach 1:

The patent changes the fundamental physical parameter from material composition to electrostatic field configuration. By creating an electric blackhole through high-voltage electrostatic charging of a conductive sphere, the system achieves frequency-independent radiation absorption. The electrostatic field parameters (voltage, charge distribution) are optimized to create a boundary that traps electromagnetic radiation across all frequencies, resolving the contradiction between broad frequency adaptability and absorption efficiency.

Inventive Principle:
Principle #35Parameter changes

Solution Approach 2:

The patent replaces mechanical/material-based absorption mechanisms (scattering, resonance, heat conversion) with an electrostatic field-based mechanism. Instead of using physical materials to interact with and dissipate electromagnetic energy, the system uses an electrostatic blackhole boundary to trap and contain radiation, fundamentally substituting the absorption mechanism and achieving universal frequency coverage with high efficiency.

Inventive Principle:
Principle #28Mechanics substitution (Replace mechanical system)

2Adaptability or versatility

If broadband radiation absorption is achieved through hybrid systems, then frequency range is extended, but system complexity increases

Engineering Contradiction:
Improvefrequency rangeVSAvoidsystem structure
Core Design Contradiction:
Adaptability or versatilityVSDevice complexity

Solution Approach 1:

The patent extracts the frequency-selective properties from the absorption mechanism itself. By creating an electric blackhole, the system removes the need for frequency-tuned materials or resonators. The electrostatic field boundary inherently traps all frequencies without requiring complex hybrid structures, thereby achieving broadband absorption while simplifying the overall system architecture.

Inventive Principle:
Principle #2Taking out (Extraction)

Solution Approach 2:

The electric blackhole structure serves as a universal absorption mechanism for all electromagnetic frequencies simultaneously. A single electrostatic field configuration performs the function that previously required multiple frequency-specific materials and resonators, achieving multi-functionality and broad frequency coverage with a simple, unified structure.

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

3Adaptability or versatility

If electric blackhole mechanism is used, then wide frequency range absorption is achieved, but measurement of blackhole properties becomes challenging

Engineering Contradiction:
Improvefrequency rangeVSAvoidblackhole property measurement
Core Design Contradiction:
Adaptability or versatilityVSDifficulty of detecting and measuring

Solution Approach 1:

The patent introduces intermediary measurement techniques to detect electric blackhole properties. By using probe electrodes, field meters, and secondary radiation detectors as intermediaries, the system can indirectly measure the electrostatic field distribution, boundary characteristics, and absorption efficiency without directly observing the blackhole itself, thereby making property measurement feasible despite the challenging nature of the phenomenon.

Inventive Principle:
Principle #24Intermediary (Mediator)

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 effectively absorbs electromagnetic radiation across a broad frequency range, leveraging the properties of electric blackholes to capture and measure various attributes, providing a robust solution for stealth applications.

Implementation Method 1

employing an electrostatic blackhole mechanism with highly compressed electron charges enclosed in a transparent container, utilizing the properties of electric blackholes to trap electromagnetic radiation within a defined boundary

Methodology Applied
Scientific EffectElectrostatic attraction: Electrostatics

Data Source

PatentUS20250316398A1Systems for radiation absorption using electric blackholes and measurement of blackhole and other properties
Publication Date: 2025.10.09 CHANDRA RAMESH
  • US20250316398A1 patent drawing
  • US20250316398A1 patent drawing
  • US20250316398A1 patent drawing

AI summary

Robust designs for radiation absorption systems are described here that allows for efficient absorption over the widest range of electromagnetic frequencies. The radiation absorption systems have been designed that utilize photon capture by electrons that are primed to capture photons with maximum efficiency by maximizing the photon capture probability. Optimum potential fields along with very low temperatures and high pressure may be utilized for the purpose. Electric blackholes utilized make it possible to absorb electromagnetic radiation over the widest range of frequencies. The systems and techniques detailed here can also be utilized for measuring various properties of different types of blackholes such as gravitational, electric, and electro-gravitational blackholes. These techniques also allow us to track photon state after it gets absorbed by an atom.Procedures/mechanisms are described for measurements of electronic collision relaxation time, effective mass of an electron, photon penetration depth, and Zero Inductance Electron Separation.