Vector Scalar Potential Communication System for Seawater Transmission
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Solution Overview
Problem
Existing communication technologies face challenges in transmitting electromagnetic signals through mediums that block or degrade radiation, such as seawater and plasma, and are detectable by third parties due to their reliance on electric and magnetic fields.
Innovation Solution
A communication system utilizing vector and scalar potential fields, which propagate as field-free entities, allowing for stealthy transmission and reception using Josephson Junctions and SQUIDs to convert these potentials into electromagnetic signals, enabling transmission through dense media without inverse square law energy drop-off and avoiding detection by standard EM detectors.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If electromagnetic signals are used for communication, then communication capability is achieved, but the signals are blocked or degraded by dense media such as seawater and plasma
Solution Approach 1:
The patent changes the fundamental parameters of the transmission field from traditional electromagnetic fields to vector and scalar potential fields. This parameter change allows the signals to propagate through dense media without the blocking effects that plague conventional EM communication, as potential fields interact differently with matter and are not subject to the same attenuation mechanisms.
Solution Approach 2:
The patent substitutes the conventional electromagnetic field mechanism with a quantum mechanical approach using vector and scalar potentials. By replacing the classical EM field theory with quantum field concepts, the system achieves transmission capability through media that block traditional EM signals, leveraging quantum interference effects rather than classical wave propagation.
2Loss of information
If electromagnetic fields are used for communication, then information transmission is achieved, but the signals are detectable by third parties
Solution Approach 1:
The patent extracts the communication function from the detectable electromagnetic field components and isolates it in the vector and scalar potential fields. By separating the information-carrying potential fields from the detectable EM radiation, the system achieves stealthy communication where information is transmitted but standard EM detectors cannot intercept or detect the signals.
Solution Approach 2:
The patent introduces quantum interference effects as an intermediary mechanism for information transmission. Rather than directly transmitting detectable EM fields, the system uses quantum phase modulation of electron waves as an intermediary, allowing information to be encoded in quantum mechanical phases that are invisible to conventional EM detection while still enabling reliable communication.
3Length of moving object
If conventional electromagnetic communication is used, then long-range communication is achieved, but energy drops off according to the inverse square law
Solution Approach 1:
The patent changes the spatial decay parameter of the transmission field from the inverse square law (1/r²) characteristic of EM radiation to a different decay profile characteristic of potential fields. This parameter change in the field's spatial behavior reduces energy loss over distance, enabling long-range communication with significantly lower energy attenuation compared to conventional EM 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 reliable long-range communication and navigation through dense media like seawater, with signals undetectable by standard EM detectors, and allows for precise location calculation using triangulation with multiple transmitters.
Implementation Method 1
the phases of quantum wave functions are modulated by vector and scalar potentials
Implementation Method 2
electron waves passing on either side of the solenoid, when recombined, register the presence of the magnetic field without direct contact due to a shift in interference pattern
Data Source
AI summary
A communication system using vector and scalar potential is disclosed. The system uses field-free potentials signaling for many applications where the absence of shielding effects in sea water, plasma or other dense media due to the fact that the absence of (E,B) fields eliminates the possibility of induced charge and current response in the media being transited.


