(280)
Gas Priming Application
Also written laser interaction
Where it is first named
... allowing even a greater number of electrons (117a xxx) to be ejected from ionized gas atom (104) being simultaneously subjected to Electron Extraction Process (260), as illustrated in (280) of Figure (3-35).
How it is written
- (280) 9×
Drawings 9
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In terms of assembly, gas resonant cavity (410), electron extraction circuit (270), optical lens (121) forms gas processor (260) of Figure (3-31). · Gas Processor
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Carries this number · WFC 422DA - Illustrations
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Figure (17) · Water Fuel Injector (Taper Resonant Cavity Chamber)
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Carries this number · Funneling Effect
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(280) of Figure (34) · Funneling Effect
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Carries this number · Funneling Effect
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(280) of Figure (3-35) · Voltage to Amp Differential Ratio
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The figure it sits on · Electronic Circuit Design
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(520) of Figure (4-3) · Funneling Effect
Where it is named · 9
Gas Processor 3×
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... allowing even a greater number of electrons (117a xxx) to be ejected from ionized gas atom (104) being simultaneously subjected to Electron Extraction Process (260), as illustrated in (280) of Figure (3-35).
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laser interaction (280)
In essence, then, laser interaction (280) along with applied voltage process (260) causes gas atom (101) to go into sub-critical state (destabilizing the mass entity of a gas atom) since absorbed laser energy (122) prevents electrons re-capt …
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gas priming application (280)
In retrospect to operational parameters, led's (118) light spectrum (extending from the visible into the Ultraviolet light region) can be selected for a given or predetermined electromagnetically gas priming application (280) since gas nucleus (108) is more responsive to coherent rather than diffused light source.
Water Fuel Injector (Taper Resonant Cavity Chamber) 2×
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Once water fuel-droplets (xxx 48n) fully occupies open space cavity (Resonant Cavity Zone) (35) and then exposed to applied pulsating opposite electrical voltage fields (49/51) of voltage wave form (280) of Figure (17), the electrically stimulated water fuel droplets (48a xxx 48n) are subjected to release thermal explosive energy (gtnt) (16) undergoing Electrical-Resonant in a sequential manner:
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and finally, spark-ignite the highly destabilized combustible gases (laser primed combustible gases having missing electrons) by electrostatic discharge (kinetic energy agitation), as further exemplified in (280) of Figure (17);
Funneling Effect 2×
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As voltage intensity increases (VL x Va x Vb) onward segmental point (85b), Energy Pumping Action (520) of Figure (4-3) (WFC Memo 424) as to (280) of Figure (34) (WFC Memo 422 DA) is activated to peak performance levels.
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(280) of Figure (34)
Voltage to Amp Differential Ratio 2×
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… tate of Equilibrium" during-pulse off-time (T2) for repeated "Snapping Action" (Rubberbanding effect) in accordance with bi-polar Voltage Rippling Effect (1010) of Figure (10-5), as so illustrated in (280) of Figure (3-35).
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(280) of Figure (3-35)