Eccentric Process Unit Of Information To Process into Quantum, Computing For Home Desk Top Use, with water cell's closed off, by the layering into the Network of the said ideal called Primeval , Done by laser imprinted information done In (Yellow Laser), (Blue Laser) 0r (Red Laser) and (Green Laser) Primeval A C.P.U Chip (C.P.U), C.P.U-Primeval, is made of (Cadmium & Glass and other (Magnetic) Material ,Possible Water layer for more memory input as the crystal, with each Water cell in each pixel as the energetic information is given by processor of the information.
Each pixel is A cell of the human brain at 5D Data storage laser ultra laser plus interpreted imprint laser intensity over 1023 W/cm2. (16 to 64 layers) with in A Microscopic layering of, Cadmium and Water and Glass, layers of it in A microscopic layering of films of skin.
16 Q-Bits of capability as seen the round film skin of Gold is the C.P.U chip in the center.
Now with Woolls Primeval Theory laser and layers all that's needed to add it in A small C.P.U for desktop use only used for desktop use adding 16 Qubits.
Qubit Array "I.B.M" layers is the same as adding 200 terabytes as the same As the new 5.0 disk by adding layers of the 5.0 Disk into the Primeval as the chemicals are match for the make for A Cd compound materials used in the Primeval as adding petabytes to A 5.0 disk the same can be done hear for it to be used As for A Desktops, or Laptop by year (2025-2030)-----
The strategy, the researchers used to write the data relies on a pair of lasers. The first, a green 515-nanometer laser, triggers spot formation, whereas the second, a red 639-nm laser, switches off the writing process. By controlling the time between firing of the lasers, the scientists could produce spots smaller than the wavelengths of light used to create them.
Its power is adaptable by the posser of Energy by its cell's that run current threw the (Critic) by the Cadmium mathematically material based information, to run the power by its curatrix of R.A.M, it will work by the power Energy passing through cadmium, is its amide based metrical compound's that make up the (Primeval-Q) it's metatrail can be based by its number of bytes by its measurements of (R.A.M) it Can hold up to 1 Qubit of information is all it will need for right now until the prototype is made.
“voxels” by creating layers of three-dimensional nanoscale gratings and deformations at various depths and angles. Machine learning algorithms then read the data back by decoding images and patterns that are created as polarized light shines through the glass, water changes memory like snow so theory for the Infromation is of an image of A flake, each pixel yellow green Blue and Red by its pixels that have water of A pixels will give Quayyum information.
Snowflake is never the same it is always changing like with the compound of water within the Yellow, Red, Blue, Green infers plus laser input by the pixels of water, it is A fact with Quantum, the fact it's with 0-1 -1-0 at the same time.
Woolls Primeval Theory – Quantum CPU Concept
Invented by Michael S Woolls
Overview:
Eccentric Process Unit of Information
A system to process quantum-level computing for desktop use. It uses water cells sealed within layered structures in a network, referred to as "Primeval." Information is imprinted using laser technology—yellow, blue, red, or green lasers—into a central CPU made of cadmium, glass, and magnetic materials, with possible water layers for additional memory storage in a crystalline form.
Each water cell acts like a brain pixel, capable of storing and processing 5D data via ultra-intense laser imprints reaching over 1023 W/cm², layered into 16 to 64 microscopic films.
C.P.U - Primeval
Materials: Cadmium, Water, Glass, Gold (film skin)
Quantum Capacity: 16 Qubits
Form Factor: Small CPU for desktop or laptop devices
Target Use: Quantum computing systems (2025–2030 generation)
Structure: Pixel-layered memory cells act like human brain cells
Center Feature: Gold film disk functions as the CPU’s Qubit core
Data Storage Parallel:
5.0 Disk Equivalence: Adds petabyte capacity using laser and chemical layering
Qubit Array Layering: Modeled similarly to IBM’s 200 TB prototypes
Memory Expansion: Theoretically infinite, scalable with layering
Qubit Power: Each pixel stores both classical (0/1) and quantum (-1/0) states
Writing Strategy:
Dual Laser System:
Green (515 nm): Triggers data spot formation
Red (639 nm): Ends the writing process
Control Precision: Sub-wavelength spot creation by time-delay modulation
Energy & Function:
Power flows through cadmium-based quantum channels, enabling self-sustained logic and RAM activation
RAM functions via amide compound structures
Stores up to 1 Qubit of live memory in prototype phase
Vowel Encoding:
Uses 3D nano-scale gratings and deformations in multi-depth layers
AI and machine learning decode laser-created patterns through polarized light
Water-pixel memory mimics snowflake behavior—no two are alike
Snowflake Theory of Data:
Each colored pixel (Yellow, Red, Blue, Green) contains a water cell storing unique quantum data
Based on the idea that information in water is ever-changing and infinite
Enables simultaneous states (0, 1, -1, -0), foundational to quantum computing
Closing Thought:
“Water memory is infinite.”
— Michael S Woolls
Invented by Michael S Woolls
Potential Uses of Crystalline Silica, Quartz Glass, and Iron in a Layered Power Application
If you are considering a layered structure for a power-related application (e.g., energy storage, thermal management, or electromagnetic shielding), crystalline silica (quartz), quartz glass, and iron each bring distinct properties that can be combined for specific functions.
1. Crystalline Silica (Quartz) – SiO₂
High melting point (~1,713 °C) and chemical inertness make it ideal for high-temperature stability Wikipedia.
Thermal conductivity and dielectric properties allow it to act as a thermal conductor or insulator depending on form.
In layered designs, it can serve as a structural backbone or thermal interface layer between other materials.
In glass form, it can be transparent or colored, enabling optical or electromagnetic filtering.
2. Quartz Glass – Amorphous SiO₂
Amorphous structure gives it transparency and optical clarity, useful for light transmission or lens-like components Wikipedia.
Can be colored by adding metal salts, enabling selective light filtering or electromagnetic shielding in certain wavelengths.
In layered systems, quartz glass can act as a transparent barrier or optical window while still allowing heat transfer if designed for it.
3. Iron – Metallic Conductor
High electrical conductivity and magnetic permeability make it excellent for electromagnetic shielding and energy transfer.
In layered designs, iron can form a shielding layer to block electromagnetic interference (EMI) or to conduct energy between layers.
Can also be used in magnetic field concentration or induction heating applications.
Layered Power Application Ideas
Thermal + Electrical Shielding Layer:
Place iron as the outermost layer for EMI shielding, with quartz glass in the middle for optical transparency and crystalline silica as the core for high-temperature stability.
Energy Storage/Conversion Layer:
Use quartz glass as a transparent dielectric layer, iron as a conductive electrode, and crystalline silica as a structural support for high-temperature operation.
Optical + Thermal Management:
Stack quartz glass for light control, crystalline silica for heat conduction, and iron for magnetic field control in devices like magneto-optical sensors.
Key Considerations
Thermal expansion mismatch between silica and iron must be managed to avoid cracking.
Optical vs. electrical functions may require careful layer thickness and material selection.
Corrosion resistance and mechanical strength should be evaluated for the intended environment.
In summary, combining crystalline silica (thermal stability), quartz glass (optical/transparent conductivity), and iron (electromagnetic conductivity) in a layered structure can create a multifunctional power device for thermal management, electromagnetic shielding, and optical control.
Sincerely
Michael S.Woolls
Is there a specific Power System request as part of this enhancement?