Steam Resonator
Attested by
Memos WFC 427-DA — Steam Resonator Manual and WFC 430 — Steam Resonator, held in this archive.
Findings · 23
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WFC Steam Resonator incorporates the VIC Switchover Circuit to cause Particle Oscillation
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WFC Steam Resonator heats water by oscillating bipolar water molecules with opposite voltage fields, without a...
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Steam Resonator (450) inserts into Fuel Cell (120) for cold-weather operation
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Positive pulse deflects water molecule toward plate E5 via attraction and repulsion forces
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Reversing to negative pulse deflects water molecule toward opposite plate E6
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Repeated molecular deflection produces kinetic particle-impact energy that heats the water bath
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Repetitive opposite-polarity pulses at a set pulse frequency heat water bath to desired temperature
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Steam Resonator purpose: superheated steam via pulsating voltage fields with restricted amp flow
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Sequential gate circuit alternates Q5/Q6 via optocouplers 51/52
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Gate circuit regulates duty pulse up to 1 MHz or more
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Duty pulse across primary coil (54) induces field coupled to pickup coil (56)
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Two VIC circuits (60) and (70) drive opposing Excitor Plates forming the Steam Resonant Cavity
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Alternating unipolar pulses between Excitor Plates increases steam production rate
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Water molecule deflects toward energized Excitor Plate due to opposite-charge attraction
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Increasing DC power supply (30) voltage amplitude increases steam yield
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Steam Resonator design session v1: best candidate (0.62kg/hr, 0% non-ohmic)
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Steam Resonator design session v1: reasoning
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Steam Resonator design session v2: best candidate (28.20kg/hr, 0% non-ohmic)
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Steam Resonator design session v2: reasoning
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Steam Resonator design session v3: best candidate (3.67kg/hr, 0% non-ohmic)
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Steam Resonator design session v3: reasoning
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Steam Resonator design session v4: best candidate (3.83kg/hr, 0% non-ohmic)
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Steam Resonator design session v4: reasoning
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