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Stan’s Legacy

(60)

Voltage Intensifier Circuit

Also written electrical circuit · circuit · pulsing circuit

Where it is first named

Voltage valves or levels (22a xxx 22n) simply controls the applied voltage potential across Resonant Cavity Assembly (120) of Figure (3-22) through voltage amplitude control circuit (50) of Figure (3-5) which is is electrically linked to primary coil (26) of Figure (3-22) of Voltage Intensifier Circuit (60) of Figure (3-5).
Analog Voltage generator (40)

How it is written

  • (60) 30×

Drawings 76

Where it is named · 30

Analog Voltage generator (40)

  1. Voltage Intensifier Circuit (60)

    Voltage valves or levels (22a xxx 22n) simply controls the applied voltage potential across Resonant Cavity Assembly (120) of Figure (3-22) through voltage amplitude control circuit (50) of Figure (3-5) which is is electrically linked to primary coil (26) of Figure (3-22) of Voltage Intensifier Circuit (60) of Figure (3-5).

    Read it there → · on Figure (3-5)

Voltage Amplitude Control Circuit (50)

  1. Voltage Intensifier Circuit (60)

    Variable voltage range (32a xxx 32n) from one (1) up to twelve (12) volts (regulating battery voltage) is applied across primary coil (26) of Voltage Intensifier Circuit (60) of Figure (3-21).

    Read it there → · on Figure (3-21)

  2. Voltage Intensifier Circuit (60)

    In terms of operability, Laser Accelerator Assembly (20) of Figure (3-5) is, now, attenuating battery voltage potential (32a xxx 32n) which is electrically connected to Voltage Intensifier Circuit (60) of Figure (3-5).

    Read it there → · on Figure (3-5)

Voltage Intensifier Circuit (60)

  1. Voltage Intensifier Circuit (60)

    The resultant signal coupling ( 65a xx 65n ) of Figure (3-21) is accomplished since primary coil (26), pulsing core (53), secondary coil (52), switching diode (55), resonant charging choke (56), resonant cavity assembly (170), natural water (68), and variable resonant charging choke (62) forms Voltage Intensifier Circuit (60) of Figure (3-22), as illustrated in Figure (3-22) as to Figure (3-23).

    Read it there → · on Figure (3-22)

  2. voltage Intensifier circuit (60)

    Negative electrical ground (61) of voltage Intensifier circuit (60) of Figure (3-22) is electrically isolated from primary electrical ground (48) of Figure (3-22).

    Read it there → · on Figure (3-22)

  3. Voltage Intensifier Circuit (60)

    Primary coil (26) is electrically isolated (no electrical connection between primary 26 and secondary coil) to form Voltage Intensifier Circuit (60) of Figure (3-22).

    Read it there → · on Figure (3-22)

  4. electrical circuit (60)

    but, also, and at the same time functions as an electronic switch which opens electrical circuit (60) during pulse off-time

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  5. pulsing circuit (60)

    Water now becomes part of Voltage Intensifier circuit in the form of "resistance" between electrical ground (67) and pulse-frequency positive potential (66) ... helping to prevent electron flow within pulsing circuit (60) of Figure (3-22).

    Read it there → · on Figure (3-22)

  6. circuit (60)

    "Voltage intensity or level across excitor array (57) can exceed 20,000 volts due to circuit (60) interaction and is directly related to pulse train (64a xxx 64n) variable amplitude input.

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  7. voltage intensifier circuit (60)

    Variable inductor-coil (62) of Figure (3-22), similar to inductor (56) connected to opposite polarity voltage zone (67) further inhibits electron movement or deflection within voltage intensifier circuit (60).

    Read it there → · on Figure (3-22)

  8. circuit (60)

    The resultant interfacing voltage circuit (190), now, exposes water molecule (210) of Figure (3-27) to a pulsating high intensity voltage field (65a xxx 65n) of opposite polarity (66/67) while restricting amp flow within circuit (60) of Figure (3-22).

    Read it there → · on Figure (3-22)

Voltage Dynamics

  1. electrical circuit (60)

    Voltage is "electrical pressure" or "electrical force" within electrical circuit (60) and is known as voltage potential (65a xxx 65n) of Figure (3-21).

    Read it there → · on Figure (3-21)

  2. electrical circuit (60)

    The higher the voltage potential (Vo xxx Vn), the greater "electrical attraction force" (qq') or "electrical repelling force" (ww') of Figure (3-29) is applied to electrical circuit (60) of Figure (3-22).

    Read it there → · on Figure (3-22)

  3. electrical circuit (60)

    Unlike voltage charges within electrical circuit (60) steps up "electrical attraction force" (qq'); whereas, like electrical charges within the same electrical circuit (60) encourages an "repelling action" (ww'), as illustrated in Figure (3-29).

    Read it there → · on Figure (3-29)

  4. electrical circuit (60)

    Unlike voltage charges within electrical circuit (60) steps up "electrical attraction force" (qq'); whereas, like electrical charges within the same electrical circuit (60) encourages an "repelling action" (ww'), as illustrated in Figure (3-29).

    Read it there → · on Figure (3-29)

  5. electrical circuit (60)

    Likewise, Ions or charged particles (atoms having missing or sharing electrons between unlike atoms) within electrical circuit (60) having unlike electrical charges are attracted to each other.

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Electrically Charged Water Molecule

  1. circuit (60)

    Voltage potential (65) within electrical circuit (60) can cause one or more electrons (79) to be dislodged from the water molecule atom (85) of Figure (3-26) due to opposite electrical polarity attraction (qq') of Figure (3-29) between unlike charged entities, as shown in (160) of Figure (326) as to Newton's and Coulomb's laws of electrical-force.

    Read it there → · on Figure (3-26)

Gas Processor

  1. Voltage Intensifier Circuit (60)

    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 Choke (56) and Gas Resonant Cavity (410) of Figure (3-34) is added to pulsing circuit ( …

    Read it there → · on Figure (3-22)

  2. pulsing circuit (60)

    … ) of Figure (3-22) except amp consuming device (390) (such as a light bulb 11_2) placed between Resonant Charging Choke (56) and Gas Resonant Cavity (410) of Figure (3-34) is added to pulsing circuit (60) to cause and convert liberated electrons (117a xxx 117n) into radiant heat - energy (Kinetic energy) (113) in the form of light energy (114)

    Read it there → · on Figure (3-34)

  3. Voltage Intensifier Circuit (60)

    Voltage Intensifier Circuit (60) of Figure (3-22)

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Resonant Propagation

  1. voltage Intensifier Circuit (60)

    Resonant Action (21) (point of particle oscillation) occurs when applied pulse voltage frequency (46) of Figure (5-5) is adjusted to "tune-in" to the Dielectric Resonance of water via voltage Intensifier Circuit (60) of Figure (5 -3);

    Read it there → · on Figure (5-5)

  2. (60) of Figure (5 -3)

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Water Fuel Injector

  1. … r enhanced by simply electrically interfacing voltage intensifier (VIC) circuit coil-assembly (580) of Figure (6-1) with 'Taper Resonant Cavity" (590) of Figure (6-2), as schematically illustrated in (60) of Figure (3-22) as to pulse core configuration (190) of Figure (3-23) (Memo WFC 422 DA) titled "WFC Hydrogen Gas Management System.

    Read it there → · on Figure (3-22)

Instant Explosion of Water

  1. Voltage Intensifier Circuit (60)

    Voltage Intensifier Circuit (60) of Figure (3-22) (Memo WFC 422 DA) as to Figure (1-1) (Memo WFC 420) and Voltage Intensifier Circuit (620) of Figure (7-1) are specifically designed to restrict amp flow during Programmable Pulsing Operations (49a xxx 49n) but in different operational modes:

    Read it there → · on Figure (3-22)

  2. Voltage Intensifier Circuit (60)

    Voltage Intensifier Circuit (60) of Figure (3-22)

    Read it there → · on Figure (3-22)

  3. VIC voltage circuit (60) utilizes copper wire-wrap to form Resonant Charging Chokes (56/62) of Figure (3-22) in conjunction with Switching Diode (55) to encourage and make use of "Electron Bounce" phenomena (700) of Figure ( …

    Read it there → · on Figure (3-22)

Propagating Electrical Stress

  1. Voltage Intensifier Circuit (60)

    Beyond amp restricting characteristic of said Amp Inhibiting Circuit (970) of Figure (10-1) as to Voltage Intensifier Circuit (60) of Figure (3-22), the spiral-wrapped coils (Resonant Charging Chokes 56/62) being paired together, also, causes voltage level enhancement beyond applied voltage input since the "Distributed Capacitan …

    Read it there → · on Figure (3-22)

  2. Voltage Intensifier Circuit (60)

    Voltage Intensifier Circuit (60) of Figure (3-22)

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  3. Blocking Diode (52) of Figure (4-9) as to Figure (1-1) allows unipolar pulse-wave to go more positive on each pulse-cycle since the Blocking Diode (52) prevents the Resonant Cavity (Cp) from discharging during pulse off-time, as so illustrated in Figure (1-4) as to (60) of Figure (3-22)

    Read it there → · on Figure (3-22)

  4. (60) of Figure (3-22)

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