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Stan’s Legacy

Figure (4)

Thermal Explosive Energy (

How it is written

  • (4)

Drawings 1

Where it is named · 6

Controlled Process For The Production Of Thermal Energy From Gases And Apparatus Useful Therefore

  1. 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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  2. 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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  3. 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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  4. 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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  5. 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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  6. 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.

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