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The Innovativeness of 0% Electrical Resistance Transmission Line Cables.JPG

Machine translated

Currently, all countries around the world are working on the development of superconductors.
Superconductors have been created by lowering the temperature to -270 degrees Celsius, but the cost of maintaining such low temperatures is very high.
Therefore, research is underway to develop room-temperature and ambient-pressure superconductors,
but the reality is that it might take at least 100 years, or even longer.
But why does electrical resistance disappear when a material becomes a superconductor?
As electrons flow, an electric field is created. At this time, this electric field attracts positive charges.
Heat is generated and electrical resistance occurs during this process of attracting positive charges.
That is why, when a superconductor reaches -270 degrees, the positive charges stop completely, so even if electrons flow, the positive charges do not move.
As a result, the electrical resistance becomes zero; even in cases where a superconductor is formed by lowering the temperature to -200 degrees, the positive charges must stop completely.
Therefore, to find a room-temperature and ambient-pressure superconductor, it is important to control the positive charges so they cannot move.
Using this principle, I am trying to create a room-temperature and ambient-pressure superconductor.
The method involves making a wire out of an insulator, filling its center with a positive charge material to create an electric field, and charging electrons.
The purple part is the insulator structure,
which forms the internal structure of the wire and is designed to withstand high pressure.
The space where the 8 electrons flow is a vacuum, and the center is where the positive charge material is filled.
To create the positive charge material, an anode reaction electrode is installed in the center to supply hydrogen during the charging process;
hydrogen ions, which have lost electrons from the hydrogen, move to the center of the wiring and accumulate, creating an electric field.
Then, the electrons released during charging are the cathode material outside the wire.
The goal is to have this cathode material emit electrons into the vacuum layer.
As the concentration of hydrogen ions in the center increases and becomes full of positive charges, the movement of electrons is controlled by electrical repulsion even when they flow.
Then, as electrons flow through the electric field with the insulator, electrical resistance disappears.
The reason electrical resistance occurs is due to the loss of the kinetic energy of electrons caused by electrons attracting positive charges.
The force that pushes electrons is electrical force, but as positive charges are pulled in, they generate heat and electrical resistance.
By filling it with positive charges like this to create a high electric field, we make it so that electrons do not move within the electric field due to the electrical repulsion between the positive charges.
As the concentration of hydrogen ions increases, the electric field generated by the positive charges becomes stronger,
but the electrical repulsion between the same positive charges also increases, preventing them from being pushed away.
Of course, the insulator must be made to withstand even higher pressures to endure that repulsion.
The superconducting wire currently under development becomes a superconductor at -220 degrees.
However, because it generates heat by attracting positive charges when electrons flow, the temperature inevitably rises over time.
Since it is only possible by constantly maintaining even lower temperatures, room-temperature and ambient-pressure superconductors are called "dream materials."
However, by filling the space with positive charges between insulators, even if the force pulling electrons weakens, the electrical repulsion allows them to maintain their position, resulting in almost no power loss.
If all the water is removed and the space is filled only with hydrogen ions, the movement of positive charges will come to a complete standstill due to electrical repulsion,
leading to the development of a room-temperature and ambient-pressure superconductor with 0% power loss and 0% electrical resistance.
The development of room-temperature and ambient-pressure superconductors, which could change human civilization itself, lies in preventing the increase in heat caused by the conversion of kinetic energy due to the electric field created by electrons and positive charges, and the resulting power loss.
It is said that it will take another 100 years for humanity to develop room-temperature and ambient-pressure superconductors, or even that it is impossible,
but it could become possible right away.

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