(90)
Hydrogen Fracturing Process
Also written Resonant Cavity · Voltage Ignition Process · thermal atomic agitation · cell driver circuit
Where it is first named
In either case, the resultant or varied pulse train (47a xxx 47n) (calibration of 44a xxx 44n) becomes incoming gated pulse signal (48) of figure (3-5) to cell driver circuit (90) of Figure (3-5) which performs a switching function by switching "off' and "on" electric ground being applied to opposite side (48) of primary coil (26) of Figure (3-19).
How it is written
- (90) 17×
Drawings 23
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Stanley A. Meyer Page.13 of 28° · WFC 417 — WFC 417
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Figure (3-5) · Acceleration Control Circuit (30)
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Figure (3-5) · Acceleration Control Circuit (30)
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Carries this number · WFC 422DA - Illustrations
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3-5 Outer Core Bobbin · Voltage Intensifier Coil Assembly
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Carries this number · Differential Air-Gas Inlet Control
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Carries this number · Differential Air-Gas Inlet Control
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Carries this number · Differential Air-Gas Inlet Control
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2-3 Water Inlet Housing · Water Fuel Injector Illustrations
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Figure (5-5) · Resonant Propagation
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Carries this number · Illustrations
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(90) of Figure (5-5) · Capacitance Reactance
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(90) of Figure (4-7) · Capacitance Reactance
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... causing "electron clustering" (641a xxx 641n) to take place within Copper Wire Zone (52) during pulse on- time (T1) · Electron Bounce Phenomenon
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(90) of Figure (5-5) · 8-2 - Traveling Voltage Wave-Guides
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Resonant Cavity (90) of Figure (4-7) · 8-5 - Energy Vectoring (Ev)
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Analog Voltage Circuit (40), as shown in Figure (3-5) · Acceleration Control Circuit (30)
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Figure (3-5) · Analog Voltage generator (40)
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Figure (3-5) · Laser Distributor
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Figure (4-7) · Water Fuel Injection System - Page 3
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Figure (5-4C) · Resonant Propagation
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The figure it sits on · Illustrations
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5-4 C · 8-4 - State Space (Sp)
Where it is named · 17
Cell Driver Circuit (90) 1×
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cell driver circuit (90)
In either case, the resultant or varied pulse train (47a xxx 47n) (calibration of 44a xxx 44n) becomes incoming gated pulse signal (48) of figure (3-5) to cell driver circuit (90) of Figure (3-5) which performs a switching function by switching "off' and "on" electric ground being applied to opposite side (48) of primary coil (26) of Figure (3-19).
Water Fuel Injection System 1×
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That, whenever the mass-size of a combustible gas atom is decreased (Md), thermal explosive energy-yield (gtnt) is increased (Ein) during thermal gas combustion (Gas // Detonation.), as so illustrated in (100) Figure (6) as to (90) of Figure (5).
Water Fuel Injection System - Page 3 1×
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That, whenever the mass-size of a combustible gas atom is decreased (Md), thermal explosive energy-yield (gtnt) is increased (Ein) during thermal gas combustion (Gas // Detonation), as so illustrated in (100) Figure (4-8) as to (90) of Figure (4-7).
Resonant Propagation 1×
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Hydrogen Fracturing Process (90)
Resonant Action (21), Compounding Action (22), Laser Injection (17). and Energy Pumping Action (520), Now, allows the production of hydrogen and oxygen gases from water in geometrical progression to set up Hydrogen Fracturing Process (90). as illustrated in Figure (5-4C) as to Figure (5-5).
Capacitance Reactance 4×
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Voltage Ignition Process (90)
... activating Voltage Ignition Process (90) of Figure (5-5)
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(90) of Figure (5-5)
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thermal atomic agitation (90)
... utilizing Dynamic Voltage Potential (600) of Figure (6-3) of opposite electrical stress (SS' - 617 - RR') to cause thermal atomic agitation (90) of Figure (4-7) (kinetic heat by atomic motion)
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(90) of Figure (4-7)
Electron Bounce Phenomenon 4×
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Hydrogen Fracturing Process (90)
... triggering Hydrogen Fracturing Process (90) of Figure (5-5) as to (100) of Figure (4-8) ... instantly releasing thermal explosive energy (gtnt) (16) from Water (85) on demand, as illustrated in Taper Resonant Cavity (590) of Figure (6-2) as to (70) of Figure (4-5).
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Hydrogen Fracturing Process (90)
Hydrogen Fracturing Process (90) of Figure (5-5)
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Hydrogen Fracturing Process (90)
… tage Potential (Vo - Vn) of opposite electrical polarity to perform work (SS' _ 617 _ RR') without amp influxing, thus, not allowing the introduction of electron flow into Hydrogen Fracturing Process (90) of Figure (5-5) during Voltage Stimulation (SS' - 617 _ RR')
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... therefore, producing a physical force-yield (Fy) during gas-ignition (70) of Figure (4-5) which is directly related to the liquid volume of water (85) per injection cycle and applied Resonant Voltage Intensity (Yo -Vn), as illustrated in (590) of Figure (6-2) as to (90) of Figure (5-5).
8-2 - Traveling Voltage Wave-Guides 2×
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Hydrogen Fracturing Process (90)
... allowing pulsating opposite electrical attraction forces (RR' / SS') to perform the work of "Electrically Charging" water bath (85) to bring-on and trigger Hydrogen Fracturing Process (90) of Figure (5-5), as illustrated in Energy Pumping stage (520) of Figure (5-3).
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(90) of Figure (5-5)
8-4 - State Space (Sp) 1×
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Hydrogen Fracturing Process (90)
... triggering Hydrogen Fracturing Process (90) (subcritical-state combustible gases being spark-ignited under Electrical Resonance of Stress).
8-5 - Energy Vectoring (Ev) 2×
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Resonant Cavity (90)
The "mode of operability" of determining the "Operational Parameters" of adjusting the thermal explosive energy (gtnt) exiting from nozzle-port (32) of Figure (4-5) as to (40) of Figure (4-2) is directly related to the characteristics of the applied Voltage Pulse Potential (Vpp) Wave-form (s) (Vpwt) and the geometrical configuration of Resonant Cavity (90) of Figure (4-7) as to (730) of Figure (7-12).