Chemistry software with elementary charge pulse control designed for the Omega coil - Part 3

The chemistry software is currently still under development. Unfortunately, we cannot yet give a specific date for its completion; development may continue for several more years.

Regardless, the software has been demonstrably under development since 2018, a process that continues to this day. A final name for the software has not yet been chosen, but I can guarantee that it is already legally protected.

Innovative Chemistry Software –

A Long-Term Research and Development Project

This chemistry software has been under continuous development for many years and currently does not yet have a final name. The final name will only be assigned once the system is fully developed. The project aims to model chemical processes, atomic structures, and their spatial arrangement using software and to process them further technically.

Long-Term Development & Invention Process

The development of this software is not a classic programming project, but rather a complex invention process. Progress is not always linear: sometimes days, sometimes months pass between individual development steps. Similar to large video game or research projects, a long period is necessary to gain new insights and implement them technically.

Work on this system has been ongoing for over eight years – with the goal of constantly learning and refining the software.

Focus on Atomic Structure Instead of Pure Charges
Unlike conventional approaches, the software does not work exclusively with elementary charges.

A key focus is on:
the internal structure of atoms
the arrangement and structure of atomic components
the spatial 3D structure, which significantly influences physical properties.

In chemistry, structure is crucial: without a correct atomic arrangement, no stable or meaningfully defined element can exist. The software takes precisely these structural relationships into account.

Atomic Density & 3D Arrangement

Atomic density results from the three-dimensional arrangement of atoms in space. The software models these spatial relationships and derives relevant properties from them. Structure, distance, and position play a central role.

Software Functions

The application consists of several core areas:
Options & settings for configuration
an element list that shows which element is currently being built
a transmission mechanism that is activated after the atomic configuration is complete
Once the list is fully populated, the configured element is transmitted via the transmission button.

Hardware Connection & Signal Processing

Data is transmitted via a USB-COM interface from the computer to a microcontroller.

There, the transmitted pulse value is converted into an electrical pulse and prepared for further processing.

Central Component: Omega Prototype Coil
The Omega prototype coil is an essential component of the overall system. It forms the basis for the further processing of atomic structures.

Without this component, the assembly and further processing of the generated elements or chemical compounds is not possible.

Note:

The software is still under active development. New functions, optimizations, and enhancements are continuously being researched and implemented.

2018 - 2026

How the software works

What has been achieved so far:

1) The software previously had a problem with RAM that hindered its operation; this has recently been resolved. The software now performs its tasks without consuming RAM. This means:

That this software performs its tasks without wasting RAM – this also means that the RAM usage remains constant, even if the software runs continuously for months or years.

Speeding up the process has to do with the operating system and how many processors are working simultaneously.

2) The other problem was the large, long numbers: Previously, the software was structured and programmed in such a way that numbers up to a certain size could not be processed. This is finally over: From now on, the software can handle numerical values ​​greater than 10^30, such as 0.0 (30 digits of zero) or even higher.

These three steps are essential; otherwise, the software cannot work with elements and molecules.

---------

This software is designed to generate elements using the Omega Coil—but why develop this specific software? It is quite simple: the focus here is on the element's level of purity. Take gold, for instance; we constantly hear in the news that its value is rising. The reason is that gold is becoming increasingly expensive and scarce. The same applies to water; we hear reports of contaminated tap water or water containing germs that make it undrinkable. You have to boil the water first to kill the germs. Of course, once the germs are dead, there is no longer a threat to our immune systems—but who would actually want to drink that? Exactly.

The software cannot function on its own without the Omega Coil; the coil essentially acts as the interface for communicating with matter.

The development process takes atomic arrangement into account. Many people wonder about atomic density—a point where many hit a wall. In reality, the arrangement of atoms in 3D space simultaneously determines the atomic density of the structure. Mystery solved. The software focuses specifically on pure elements and chemical compositions. You could use the Omega Coil to clone water from a bottle, for example, but the water itself isn't 100% pure. It requires filtration to achieve purity—and that is precisely where this software comes in. Unfortunately, it has been under continuous development since 2018, meaning work will likely continue for years to come. The software operates using not only electrons but also protons and neutrons. Neutrons do not simply appear out of nowhere; the Omega Coil is essential for their generation. In short, energy is required to achieve this. Another factor is that, when producing pure H2O (water), the chemical composition process is already complete. This means there is no risk of explosion here, because the H2O composition is already chemically bonded. An explosion occurs only when the elements H2 and O come together, whereas H2O is already a unified molecule. In other words, it is not strictly necessary to pre-mix H2 and O; naturally, there are other ways to achieve this.

The software itself is designed for all three states of matter: solid, liquid, and gas.

It constructs the chemical structure of the matter, which then travels through the computer's USB port and along the line. Effectively, the output from the software consists of numerical impulses rather than electrical impulses. An electrical impulse is generated only after the impulse value reaches the microcontroller, where the impulse is converted into electricity.

However, since the microcontroller does not recognize these impulse values ​​on its own, the board must first be pre-programmed.

Currently, microcontrollers—and their internal electronics—are equipped only for electron flow (negative charge) and are therefore unsuitable for this software.

A suitable alternative would be, for example, a microcontroller that operates using three types of flow: proton flow, electron flow, and neutron flow. The system requires these flows to be separated; otherwise, the chemical software cannot communicate properly with the microcontroller.

Another crucial factor is maintaining a constant flow rate within the chemical software when protons, electrons, and neutrons are moving simultaneously along the line toward the microcontroller. This aspect specifically addresses the interaction between the software and the computer's system memory. The software is capable of continuous operation without causing memory issues or data withdrawal.