# ============================================================================== # 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 sys import os sys.path.insert(0, os.path.abspath(os.path.join(os.path.dirname(__file__), ".."))) from math_harness_compat import xp, AnyArray import scipy.constants as const # --- PHYSICAL CONSTANTS --- F_TARGET = 1.0 # Target frequency (normalized) T_P = 6.24e-12 # Picosecond clock period (~1/F_Precision) # --- PCB PARAMETERS (PCBWay Standard) --- # FR-4 Er = 4.2 # Trace Inductance L' ~ 0.5 nH/mm # Trace Capacitance C' ~ 0.1 pF/mm def calculate_resonance(L, C): """Calculates f = 1 / (2*pi*sqrt(L*C))""" return 1.0 / (2 * xp.pi * xp.sqrt(L * C)) def simulate_passive_manifold(): print("--- TSM-VDP v5: PASSIVE R-L-C FIELD SIMULATION ---") # 1. RESONANCE AUDIT # Goal: match target frequency # Let L = 0.1nH (0.2mm trace) # Let C = 10fF (Small overlap/gap) target_L = 0.1e-9 target_C = 9.87e-15 # 9.87 fF f_res = calculate_resonance(target_L, target_C) print(f"Target Frequency: {F_TARGET/1e9:.2f} GHz") print(f"Calculated Resonance: {f_res/1e9:.2f} GHz") print(f" L = {target_L*1e12:.2f} pH") print(f" C = {target_C*1e15:.2f} fF") # 2. CAPACITIVE AND-GATE THRESHOLD # If Input A and Input B both provide 1.8V, does the gap jump? # Capacitive impedance Zc = 1 / (2*pi*f*C) # Tapered regularization applied to f to avoid high-freq impedance collapse f_reg = F_TARGET * xp.exp(-1e-12 * F_TARGET) # Toy regularization z_c = 1.0 / (2 * xp.pi * f_reg * target_C) print(f"\n[Capacitive Logic (AND)]") print(f" Coupling Impedance (Zc): {z_c:.2f} Ohms") # 3. MEMISTOR ADAPTATION (POWER-AS-COMPUTATION) # Energy E = P * t = (V^2 / R) * t v_peak = 1.8 r_mem = 50.0 # Initial energy_per_tick = (v_peak**2 / r_mem) * T_P print(f"\n[Termodynamic Computation]") print(f" Energy per Planck-Tick: {energy_per_tick:.4e} Joules") print(f" Dissipation is the Logic: {energy_per_tick > 0}") if __name__ == "__main__": simulate_passive_manifold()