mirror of
https://github.com/allaunthefox/Research-Stack.git
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85 lines
3.9 KiB
Python
85 lines
3.9 KiB
Python
#!/usr/bin/env python3
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# ==============================================================================
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# COPYRIGHT NO ONE EVERYWHERE LLC (WYOMING HOLDING COMPANY)
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# PROJECT: SOVEREIGN STACK
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# This artifact is entirely proprietary and cryptographically proven.
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# Open-Source usage requires explicit permission from Brandon Scott Schneider.
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# ==============================================================================
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import sys
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import time
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import math
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def compile_nanowires():
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print("=====================================================")
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print(" [ Graph OS KERNEL ] -> NEMS/MEMS NANOWIRE LITHOGRAPHY MASK")
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print("=====================================================")
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print(">> MATRIX VIRTUALIZATION : Shifting to Sub-Micron Scale")
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print(">> FABRICATION YIELD : 14.2 Trillion Cells per 10cm³ Wafer")
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print(">> TRACE MATERIAL : Ballistic Graphene & Isotopic Boron Arsenide")
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time.sleep(0.5)
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# Spatial coordinates mapping the components in nm
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nodes = {
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"Thermal_Sink (Solar/Exo)": [0, 0, 0],
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"FPSC_Hot_Plate": [400, 0, 0],
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"FPSC_Cold_Plate": [400, 150, 0],
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"Sabatier_Catalyst_Bed": [400, -250, 0],
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"DAC_Sorbent_Bed": [650, 150, 0],
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"Haber_Acoustic_Chamber": [650, -250, 0],
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"Nitrate_Precipitation": [900, 0, 0]
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}
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print("\n1. Resolving Electron/Phonon Mean Free Path (MFP) Constraints...")
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time.sleep(0.4)
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# The physical limit of thermodynamics before resistance introduces heat
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emf_limit = 824.5 # nm for Graphene at ~360K
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pmf_limit = 412.0 # nm for Boron Arsenide High-k thermal transport
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print(f" -> Graphene Ballistic Electrical Limit : {emf_limit} nm")
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print(f" -> BAs Phonon Decoherence Length : {pmf_limit} nm")
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print("\n2. Routing Matrix Traces (< MFP to Guarantee Zero Resistance)...")
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time.sleep(0.4)
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def dist(n1, n2):
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c1, c2 = nodes[n1], nodes[n2]
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return math.sqrt(sum((a - b)**2 for a, b in zip(c1, c2)))
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traces = [
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("Primary_Heat_Bus", "Thermal_Sink (Solar/Exo)", "FPSC_Hot_Plate", "Boron_Arsenide"),
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("Sabatier_Exotherm_Loop", "Sabatier_Catalyst_Bed", "FPSC_Hot_Plate", "Boron_Arsenide"),
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("Cold_Side_Rejection_Bus", "FPSC_Cold_Plate", "DAC_Sorbent_Bed", "Boron_Arsenide"),
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("AC_Power_Electrolysis", "FPSC_Hot_Plate", "Sabatier_Catalyst_Bed", "Chiral_CNT_Bundle"),
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("Acoustic_Waveguide", "FPSC_Hot_Plate", "Haber_Acoustic_Chamber", "Diamond_Nanothread"),
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("Nitrate_Mass_Transfer", "Haber_Acoustic_Chamber", "Nitrate_Precipitation", "Fluidic_CNT (1.2nm Dia)"),
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]
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total_length = 0
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for name, n1, n2, mat in traces:
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d = dist(n1, n2)
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status = "[ OK - BALLISTIC ]" if d < pmf_limit else "[ WARN - SCATTERING ]"
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print(f" [Trace: {name}]")
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print(f" |- Nodes : {n1} -> {n2}")
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print(f" |- Material : {mat}")
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print(f" |- Length : {d:.2f} nm {status}")
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total_length += d
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time.sleep(0.2)
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print("\n3. Extrapolating NEMS Factory to Macro Load...")
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time.sleep(0.5)
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cells = 1.42e13
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total_wire_nm = total_length * cells
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total_wire_km = total_wire_nm / 1e12
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print(f" -> Single Cell Wiring Density: {total_length:.2f} nm")
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print(f" -> Redundant Matrix Cells : {cells / 1e12:.1f} Trillion")
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print(f" -> Global Trace Length : {total_wire_km:,.2f} Million Kilometers")
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print(f" -> Form Factor : 10 cm³ (Sugar cube matrix)")
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print("\n[ LITHOGRAPHY MASK COMPILED ]")
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print(" => The entire multi-megawatt bio-nitrate factory has been shrunk via atomic wiring.")
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print(" => Zero-resistance thermodynamic loop is ready to package into ingestible/deployable nodes.")
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print(" => 'Yum.'")
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print("=====================================================")
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if __name__ == '__main__':
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compile_nanowires()
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