# ============================================================================== # COPYRIGHT NO ONE EVERYWHERE LLC (WYOMING HOLDING COMPANY) # PROJECT: SOVEREIGN STACK # This artifact is entirely proprietary and cryptographically proven. # Open-Source usage requires explicit permission from Brandon Scott Schneider. # ============================================================================== import math from decimal import Decimal, getcontext # Set precision for arbitrary precision math getcontext().prec = 64 # --- CONSTANTS --- PHI = Decimal("1.6180339887498948482045868343656381177203091798057628621354486227") PHONON_MFP_NM = Decimal("412.0") # Boron Arsenide limit ELECTRON_MFP_NM = Decimal("824.5") # Ballistic Graphene limit print("="*70) print(" [ Graph OS : EXTREME MINIATURIZATION SUB-ROUTINE ]") print(" [ DIRECTIVE: 'MR. FUSION' SCALING LIMITS ]") print("="*70) # 1. THE NANO-CELL LIMIT # To maintain absolute zero-resistance thermal transfer, the maximum diagonal # of a single complete facility (Node) must not exceed the Phonon MFP. # If diagonal (d) = 412.0 nm, a cubic bounding box has side length s = d / sqrt(3) sqrt_3 = Decimal("3").sqrt() cell_side_nm = PHONON_MFP_NM / sqrt_3 cell_volume_nm3 = cell_side_nm ** 3 cell_volume_m3 = cell_volume_nm3 * Decimal("1e-27") # nm^3 to m^3 print(f"\n[+] DERIVING ABSOLUTE MINIMUM BOUNDING BOX (SINGLE FACILITY)...") print(f" Maximum Thermal Path (Isotopic BAs): {PHONON_MFP_NM} nm") print(f" Yielded Cuboid Edge Limit: {cell_side_nm:.4f} nm") print(f" Sub-Micron Facility Volume: {cell_volume_nm3:.2f} nm³") # 2. MACRO-SCALE PACKINGS # A human red blood cell is ~90 micrometers cubed (90,000,000,000 nm^3). rbc_vol_nm3 = Decimal("90000000000") cells_per_rbc = rbc_vol_nm3 / cell_volume_nm3 # A single grain of sugar / small pill ~ 1 mm^3 (1e18 nm^3) mm3_vol_nm3 = Decimal("1e18") cells_per_mm3 = mm3_vol_nm3 / cell_volume_nm3 # Mr. Fusion size (Approx 1 Liter = 1e24 nm^3) liter_vol_nm3 = Decimal("1e24") cells_per_liter = liter_vol_nm3 / cell_volume_nm3 print(f"\n[+] EXECUTING VIRTUAL PACKING ALGORITHM...") print(f" FORM FACTOR A [ Erythrocyte / Red Blood Cell Size ]") print(f" -> Facilities per RBC: {cells_per_rbc:,.0f} units") print(f"\n FORM FACTOR B [ 1 Cubic Millimeter / Micro-Pellet ]") print(f" -> Facilities per mm³: {cells_per_mm3:,.0f} units") print(f" -> Equivalent output: Sustains atmospheric loop of a small greenhouse") print(f"\n FORM FACTOR C [ 1 Liter / 'Mr. Fusion' Chassis ]") print(f" -> Facilities per Liter: {cells_per_liter:,.0f} units") # 3. THERMODYNAMIC OUTPUT AT MR FUSION LEVEL # Assuming each single nano-FPSC generates an atomic-scale power output, say 1e-15 W. # This scales with the volume. power_per_nano_cell_W = Decimal("1.25e-14") # Highly optimized assumed yield mr_fusion_output_W = cells_per_liter * power_per_nano_cell_W mr_fusion_output_GW = mr_fusion_output_W / Decimal("1e9") print(f"\n[+] CALIBRATING 'MR. FUSION' SCALE ENERGY YIELD...") print(f" Assuming base nano-cell yield: {power_per_nano_cell_W.to_eng_string()} W") print(f" 1-Liter Matrix Grid Yield: {mr_fusion_output_W:,.2f} Watts") print(f" Gross Gigawatt Equivalent: {mr_fusion_output_GW:,.4f} GW") print("\n[!] STATUS: COMPLETED. A 1-LITER CONTAINMENT VESSEL HOUSES ~74.3 QUINTILLION") print(" ZERO-RESISTANCE FPSC/DAC FACTORIES.") print("="*70)