Atomic Resonance Communication Core With Plasma Field Modulation
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Solution Overview
Problem
Existing communication devices face limitations in efficiently transmitting and receiving data over long distances using conventional methods, particularly in scenarios requiring high data security and energy-efficient solutions.
Innovation Solution
An atomic resonance communication device utilizing a central core, inductor coils, and high voltage coils to generate electromagnetic plasma fields, enabling data transmission and reception through rotational modulation and demodulation of signals within a plasma field.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Use of energy by moving object
If conventional communication methods are used, then data transmission can be achieved, but energy efficiency and data security are insufficient
Solution Approach 1:
The patent changes the fundamental parameter of signal transmission medium from conventional electromagnetic waves in air to plasma fields. By creating and utilizing plasma environments, the system achieves more efficient energy transfer and inherently secure communication that conventional methods cannot provide
Solution Approach 2:
The patent replaces conventional electronic communication systems with a plasma-based communication system. Instead of using traditional circuits and electromagnetic wave transmission through air, the invention uses plasma generation, rotational modulation, and magnetic field interaction to achieve communication with superior energy efficiency and security
2Length of stationary object
If long distance data transmission is achieved, then communication range is improved, but energy consumption increases
Solution Approach 1:
The patent employs rotational modulation where the plasma field and signal carrier rotate periodically. This periodic action allows the signal to be transmitted over long distances through sustained plasma field interaction, achieving extended range without proportionally increasing energy consumption
Solution Approach 2:
By changing to plasma field transmission and utilizing rotational modulation parameters, the system achieves long-distance transmission with optimized energy consumption. The plasma field acts as an efficient energy carrier that can extend transmission range without the exponential energy increase typical of conventional systems
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
Enables efficient and secure data transmission and reception over long distances by leveraging rotational modulation and demodulation of signals within a plasma field, enhancing energy efficiency and data security.
Implementation Method 1
high voltage coils that generates an electromagnetic plasma field
Implementation Method 2
The inductor coils modulate and demodulate the signal by varying inductance and strength of electromagnetic fields
Implementation Method 3
causes the central core to transmit the signal outside the device via the field
Data Source
AI summary
An atomic resonance communication device includes a central core to transmit and/or receive a signal. The device includes inductor coils surrounding the central core to generate electromagnetic fields within and impart rotational or gyroscopic spin to the central core. The device includes high voltage coils to generate a plasma field around and within the central core and within which the central core and the inductor coils rotate. The device includes a signal injection circuit to introduce the signal into the device in accordance with data to be transmitted. Rotation of the central core and the inductor coils within the plasma field modulates the signal, causing the central core to transmit the signal outside of the device.


