(270)
Electron Extraction Circuit
Also written interfacing circuit
Where it is first named
The resultant ionized gas process (260) of Figure (3-33) is performed by Electron Extraction Circuit (270) of Figure (3-34) which function in like manner to Voltage Intensifier Circuit (60) of Figure (3-22) except amp consuming device (390) (such as a light bulb 11_2) placed between Resonant Charging Chok …
How it is written
- (270) 12×
Drawings 11
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(270) of Figure (3-34) · Gas Processor
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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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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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Figure (3-2) · Laser Distributor
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Carries this number · WFC 422DA - Illustrations
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Carries this number · WFC 422DA - Illustrations
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(270) of (3-34) · In Application of Usage
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Figure (3-34) · Propagating Electrical Stress
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blocking diode (55) of Figure (3-34) · Voltage to Amp Differential Ratio
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(240) of Figure (3-31) · Gas Processor
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Figure (3-31) · Water Fuel Injection System - Page 1
Where it is named · 12
Gas Processor 10×
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Electron Extraction Circuit (270)
The resultant ionized gas process (260) of Figure (3-33) is performed by Electron Extraction Circuit (270) of Figure (3-34) which function in like manner to Voltage Intensifier Circuit (60) of Figure (3-22) except amp consuming device (390) (such as a light bulb 11_2) placed between Resonant Charging Chok …
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Electron Extraction Circuit (270)
Electron Extraction Circuit (270) of Figure (3-34)
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Repetitive formation of electrical voltage force or voltage intensity (65a xxx 65n) of Figure (3-21) attracts and causes liberated electrons (117a,xxx 117n) to move electrically away from gas resonant cavity (410) and physically interact with light bulb filament (115) to initiate and perform kinetic conversion process (390), as further illustrated in (270) of Figure (3-34).
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kinetic conversion process (390) as to (270) of Figure (3-34)
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Voltage fields (106/107) are physically configured (skin effect) by T304 stainless steel material to form voltage plates (E3/E4) of Figure (3-33) which are not only chemically inert to gas ionization process (260) but, also, forms tubular Gas Resonant Cavity (410) of Figure (3-34) having approximately the same size and shape of liquid resonant cavity (170) of Figure (3-25), as illustrated in (270) of Figure (3-34).
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(270) of Figure (3-34).
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To further destabilize gas atom (104), emitted laser energy (electromagnetic energy having zero mass) (116) is, now, injected into Gas Resonant Cavity (410) via optical lens (121) and superimposed onto gas ionized process (260) and subsequently absorbed by gas atom nucleus (108), as illustrated in (260) of Figure (3-33) as to (270) of Figure (3-34).
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(270) of Figure (3-34)
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interfacing circuit (270)
… (101) to go into sub-critical state (destabilizing the mass entity of a gas atom) since absorbed laser energy (122) prevents electrons re-capture (atoms accepting electrons) while interfacing circuit (270) dislodges, captures, and immediately consumes ejected electrons (117a xxx) In other words, ambient air gases (101) has, now, become electromagnetically primed destabilized gas atoms (l04a xxx 100n) h …
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electron extraction circuit (270)
In terms of assembly, gas resonant cavity (410), electron extraction circuit (270), optical lens (121) forms gas processor (260) of Figure (3-31).
In Application of Usage 2×
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The Electron Extraction Process (230) of Figure (3-30) as to (270) of (3-34) ionizes the highly energized combustible gases to decrease atomic mass while applied traveling voltage wave-form (57) of Figure (6-2) of opposite electrical polarity (E9-66/ ElO-67) initiat …
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(270) of (3-34)