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Nano-Zeqond Evolver

The Nano-Zeqond Evolver is a working demonstration that the framework's physics is real and runs right there in the browser. It evolves the HULYAS master equation and runs molecular dynamics at nano-zeqond resolution, emitting a state snapshot every 0.777 s Zeqond. The 1.287 Hz pulse modulates the metric at every step, and KO42 holds energy drift to ≤0.1%, reported live.

Three engines, one clock

Master-equation field

Each print is one differential update of the evolving field ϕ. Between prints it integrates at nano-zeqond resolution; every snapshot lands on the Zeqond boundary.

Molecular dynamics

Velocity-Verlet integration of F = ma under a shifted-truncated Lennard-Jones potential with periodic boundaries — a real NVE MD engine, energy and momentum conserved.

GPU field

The 2-D field ϕ(x,y,t) on a 256×256 grid, stepped in parallel on the GPU — same physics, verified to match the CPU reference to float precision, billions of cell-updates per second.

Real physics, honestly bounded

The molecular-dynamics engine integrates NM19 (F = ma) under a Lennard-Jones potential plus harmonic NM30 bonds, in the NVE ensemble — so total energy and momentum are conserved, and the drift is held to ≤0.1% by KO42 and shown to you as it runs. It reports real MD throughput: nanoseconds of molecular time per wall-second, in reduced units mapped to argon. The GPU path computes the field equation ∇²ϕ − μ²ϕ − λϕ³ entirely in fragment shaders and is checked against the CPU evolver to float precision — the same physics, two implementations, agreeing.

It runs right in your browser — the clearest proof that Zeq's physics is a real engine you can watch integrate, on the clock, to the bound it claims. The very same physics is what your hosted machine runs when you compute at scale.

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