Figure (4)
Thermal Explosive Energy (
How it is written
- (4) 6×
Drawings 1
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Captioned as this figure · Controlled Process For The Production Of Thermal Energy From Gases And Apparatus Useful Therefore
Where it is named · 6
Controlled Process For The Production Of Thermal Energy From Gases And Apparatus Useful Therefore 6×
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As shown in FIG. 4, gas waves are repeatedly subjected to the resonant cavity (shown as a coil) while providing thermal explosive energy, where one pulse ignites the gases and changes the gas to successively higher energy levels. Once a thermal explosion occurs, subsequent gas molecules repeat the cycle, outputting hydrogen/oxygen gas at a tremendously high frequency until the system reaches maximum energy.
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circuit with the circuit of FIG. 4 may be achieved by interconnecting the input "A" of the gas circuit of FIG. 5B to a concentric point "A" of the pulsing circuit of FIG. 4.
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circuit with the circuit of FIG. 4 may be achieved by interconnecting the input "A" of the gas circuit of FIG. 5B to a concentric point "A" of the pulsing circuit of FIG. 4.
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Together the hydrogen/oxygen input energy 4 and the pulsed electrostatic field as shown in FIG. 4 creates a field for causing atoms or ions in the resonant cavity to separate out gas elements and electrons from water molecules, while being subjected to a further charge in the atomic field. If resonance energy is applied repeatedly, it creates an ionized plasma gas stream at very high frequency.
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Resonance voltage stimulation, where molecular water voltages pass through the field at frequencies of water-splitting and subsequent gas formation, causes ionization as discussed and illustrated in FIG. 4. The hydrogen/oxygen gas mixture is subjected to recombination via the field process.
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The triggering application of a voltage pulse train (A) is also shown in FIG. 5, shown synchronizing pulses in gas mixture generation, whereby FIG. 4 details the electrode system receiving successive pulse streams to induce voltage output and recombination.