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Stan’s Legacy

(Vb)

VIC Voltage Enhancement Circuit

Where it is first named

… applied traveling voltage wave-form (57) of Figure (6-2) of opposite electrical polarity (E9-66/ ElO-67) initiates the voltage-triggering process (600) of Figure (6-3) once maximum voltage deflection (VO - Va - Vb - Vc - Vn) of Figure (6-4) is achieved at Activation-Point (E9d) of Figure (6-2) ... releasing thermal Explosive Energy (gtnt) from the atomic level of the water molecule.
In Application of Usage

How it is written

Drawings 19

Where it is named · 4

In Application of Usage

  1. … applied traveling voltage wave-form (57) of Figure (6-2) of opposite electrical polarity (E9-66/ ElO-67) initiates the voltage-triggering process (600) of Figure (6-3) once maximum voltage deflection (VO - Va - Vb - Vc - Vn) of Figure (6-4) is achieved at Activation-Point (E9d) of Figure (6-2) ... releasing thermal Explosive Energy (gtnt) from the atomic level of the water molecule.

    Read it there → · on Figure (6-4)

Instant Explosion of Water

  1. VIC Voltage Enhancement Circuit (VIC - VB)

    VIC Voltage Enhancement Circuit (VIC - VB) (620) of Figure (7-1) incorporates the use of stainless steel wire-wrap coils (614/615) to accomplish the formation of unipolar gated pulse-wave (64a xxx T3 xxx 64n) without experiencing "signal dist …

    Read it there → · on Figure (7-1)

  2. (VIC - VB) (620) of Figure (7-1)

    Read it there → · on Figure (7-1)

Inductance (FL)

  1. Component Interaction promotes Component Reactance during D.C. pulsing operations while allowing variable voltage amplitude (Vo - Va -Vb - Vn) of Figure (7-13) to be attenuated independently of Voltage Pulse frequency (49a xxx 49n), as so illustrated in (600) of Figure (6-3).

    Read it there → · on Figure (7-13)