Gas Processor
Findings · 50
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Electron extraction circuit synchronized with resonant cavity pulsing via point 'A'
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Electron extractor grid restricts electron replacement in resonant cavity
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Gas ions reach critical state after high-energy resonance, causing collapse and thermal energy release
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Repetitive voltage pulse train incrementally elongates gas ions during electron removal
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Electron extraction circuit draws liberated electrons to an electrical load via positive potential
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Blocking diode and resistive wire manage electron flow and prevent voltage leakage
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Electron extraction prevents spark-ignition in the gas resonant cavity
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Collected gas mixture subjected to polar pulsating field to induce electron orbital resonance
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Ionized gas atoms exposed to electromagnetic wave energy then electron extraction destabilizes ion nucleus
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Air gas processor ionizes ambient air using electron extraction circuit and laser energization
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Gas Processor treats ambient air, not the fuel cell's combustible gas
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Electron sink/grid coordinated with resonant cavity pulsing via synchronization circuit
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Electron extractor grid circuit restricts electron replacement in the gas resonant cavity
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Electron extractor circuit routes liberated electrons to an electrical load as usable energy
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Electron extraction pulse train is gated alternately with the resonant cavity pulse train
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Electron extraction prevents spark-ignition by avoiding electron build-up in the gas resonant cavity
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Electron extraction circuit prevents electron flow into resonant circuit
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Air Gas Processor ionizes ambient air separately from the fuel cell's combustible gas, per US 4,826,581 method
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Air Gas Processor treatment chamber contains laser batteries around a concentric rod/cylinder charging cell
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Electron Extraction Circuit ionizes incoming ambient air gas in the Gas Processor
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Electron Extraction Process ionizes combustible gases to decrease atomic mass
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Electron Extraction Process ionizes combustible gases to decrease atomic mass
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LEDs can replace sunlight as the photon-light source for the Gas Processor Process
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Electron Extraction Circuit (BB) removes electrons to force gas atoms into Critical-State
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Resistive components and isolated ground prevent electron replacement during pulsing
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Dislodged electrons are consumed as heat via an Amp Consuming Device
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Oxygen atom with <4 covalent electrons cannot reach stable state during ignition
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Electron Extraction Circuit decreases gas atom mass and generates electrical energy
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Ambient air gases are laser primed and ionized by the Gas Processor
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Electron Extraction Circuit captures ejected electrons and blocks electron flow
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Resultant fuel-gas passes through Quenching Tube to Fuel Injectors for hydrogen utilization
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Electron Extraction Circuit ionizes ambient air gases via opposing high-voltage fields
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Electron Extraction Circuit functions like the VIC but adds an amp-consuming device
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Ambient air gas dielectric breakdown occurs around 17,000 volts across a one-inch gap
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Voltage plates E3/E4 are made of T304 stainless steel using skin effect configuration
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Laser energy is injected into the Gas Resonant Cavity via an optical lens to further destabilize gas atoms
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LED cluster array provides tunable light energy matched to gas absorption rate
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Light/laser intensity duty cycle is variable from 1Hz to beyond 10kHz
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Gas Processor assembly consists of gas resonant cavity, electron extraction circuit, and optical lens
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LED spectrum can span visible to ultraviolet for gas priming, favoring coherent light
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Sub-critical gas atoms mix with metered fuel-gas and exhaust gas before entering engine cylinder
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Electron Extraction Circuit captures ejected electrons in the Gas Processor / Ambient Air Ionizer
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Fuel-Gas Processor acts as Gas Ionization Chamber when VIC (A3) activated
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Gas Bleed-Off Valve prevents unwanted pressure during engine turn-on
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Electron Extraction Circuit (BB) removes and consumes dislodged electrons from gas atoms
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Resistors R4, R6, R7, gas dielectric Rg, and isolated ground W prevent electron replacement during resonant pu...
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Amp Consuming Device destroys dislodged electrons as heat during alternate pulsing
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Electron Extraction Circuit routes liberated electrons to an electrical load via positive potential attraction
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Blocking diodes and gated pulse trains synchronize Electron Extraction with Hydrogen Fracturing
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Electron Extraction Process prevents spark-ignition by controlling electron build-up and gas flow-rate
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