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Stan’s Legacy

(66)

Positive Voltage Potential

Also written opposite polarity · applied voltage Potential of opposite polarity · applied voltage pulse of opposite polarity · applied voltage Potential · Voltage Potential · voltage zones · Applied voltage fields · Excitor-Array and 16 more

Where it is first named

These controlled and variable pulse features are, now, translated to Resonant Charging pulse train (65a xxx 65n) of Figure (3-21) via Unipolar pulse train (64a xxx 64n) of Figure (3-20) during Resonant Action (160) of Figure (3-26) when signal coupling is applied across Resonant Cavity (170) of Figure (3-24) via positive voltage zone (66).
Voltage Intensifier Circuit (60)

How it is written

Drawings 189

Where it is named · 45

Voltage Intensifier Circuit (60)

  1. positive voltage zone (66)

    These controlled and variable pulse features are, now, translated to Resonant Charging pulse train (65a xxx 65n) of Figure (3-21) via Unipolar pulse train (64a xxx 64n) of Figure (3-20) during Resonant Action (160) of Figure (3-26) when signal coupling is applied across Resonant Cavity (170) of Figure (3-24) via positive voltage zone (66).

    Read it there → · on Figure (3-24)

  2. Excitor-Array (66/67)

    Resonant charging choke (56) in series with Excitor-Array (160) of Figure (25) forms an inductor-capacitor circuit (180) of Figure (3-28) since Excitor-Array (66/67) acts and performs as a capacitor (dielectric liquid between opposite electrical plates) during pulsing operations.

    Read it there → · on Figure (3-28)

  3. electrical plates (66/67)

    (dielectric constant of water being 78.54 @ 20C in 1-atm pressure) between electrical plates (66/67)

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  4. pulse-frequency positive potential (66)

    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)

  5. excitor-array (66/67)

    During resonant interaction, the incoming unipolar pulse train (64a xxx 64n) of Figure (320) as to Figure (3-21) produces a step charging voltage effect across excitor-array (66/67) (57) as so illustrated in Figure (3-21).

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

  6. opposite polarity (66/67)

    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. positive (66)

    These electrical "forces" are known as ''voltage fields" and can exhibit either a positive (66) or negative (67) electrical charge.

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  2. voltage zones (66/67)

    Furthermore, electrical charged ions or particles can move toward stationary voltage fields or voltage zones (66/67) of opposite polarity, and, is given by Newton's second law (Eq 12)

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Electrically Charged Water Molecule

  1. external electrical force (66/67)

    Furthermore, external electrical force (66/67) can alter the electromagnetic properties of a atom since electromagnetic force is dependent on the movement of charged particles in a electrostatic field voltage Intensifier circuit (190) of figure ( …

    Read it there → · on Figure (3-23)

Electrical Polarization process

  1. voltage-field (66)

    Stationary "positive" electrical voltage-field (66) (voltage plate E1) not only attracts negative charged oxygen atom (76) but also pulls away negative charged covalent electrons (84) from water molecule (210).

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Resonant Action

  1. To reach maximum gas-yield (88) resonant cavity (170) of Figure (3-25) is shaped into a tubular structure (typically 0.50 inch diameter tube inserted into 0.75 inch diameter tube having a .0625 concentric air-gap 3 inches long) which functions as a longitudinal wave-guide to enhance particle movement in a lateral or angular displacement to applied voltage fields (66/67).

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  2. voltage intensity (66/67)

    In cases where applied voltage amplitude is to remain constant while promoting Resonant Action during control-state, incoming pulse train (64a xxx 64n) is varied independent of voltage amplitude to attenuate voltage intensity (66/67) which, in turn, effects gas production.

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  3. Voltage amplitude (66/67)

    In other applications, Voltage amplitude (66/67) in direct relationship to pulse-train (64a xxx 64n) may be varied together in a progressive manner to further control gas production. Or pulse-train (64a xxx 64n) can remain constant while voltage amplitude is varied.

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  4. voltage zones (66/67)

    In practice, stainless steel voltage plates (E1/E2) physically forms voltage zones (66/67) regardless of geometric shape or configuration of resonant cavity (170).

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Energy Pumping Action

  1. Applied voltage fields (66-El/67-E2)

    Applied voltage fields (66-El/67-E2) causes and forms both opposite attraction forces (ST - ST') and (RU - RU') across exposed Hydrogen Atom (77) since the negative charged hydrogen electron (1) is attracted and deflected toward stationary positive voltage field (66);

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  2. stationary positive voltage field (66)

    Applied voltage fields (66-El/67-E2) causes and forms both opposite attraction forces (ST - ST') and (RU - RU') across exposed Hydrogen Atom (77) since the negative charged hydrogen electron (1) is attracted and deflected toward stationary positive voltage field (66);

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  3. applied voltage fields (66/67)

    Interlocked together, the resultant "Electrical Tension of Forces" (4/5) is directly related to Voltage Intensity (ST - ST' / RU - RU' ) of applied voltage fields (66/67) which is variable as to applied voltage amplitude ( Vo xxx ). Increasing voltage amplitude ( xxx Vn) still further increases electrical tension (4 / 5 ) being applied to Energy Aperture (7) or vice versa.

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  4. applied voltage pulse of opposite polarity (66/67)

    Once applied voltage pulse of opposite polarity (66/67) is terminated during pulse off-time, then Energy Aperture (7) automatically adjusts to maintain a given energy level since each aperture oscillation (aperture expansion) emits a discrete amount of Universal Energy (9) into proton (3) via energy pathway (ZZ'), as illustrated in Figure (5-1).

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  5. Repetitive pulsing of applied voltage fields (66/67), now, oscillates Energy Aperture (7) to emit even a greater amount of Universal Energy (9a xxx 9n) into the energy spectrum of the proton nucleus (3) to be absorbed ... thereby, increasing the energy level of hydrogen atom still further .... deflecting hydrogen electron (1) to a higher energy state, as illustrated in (520) of Figure (5-3).

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  6. voltage stimulation (66/67)

    … Likewise, liberated oxygen atom (76) and other dissolved air gases (97) submerged in water bath (68) undergo and experience similar Energy Pumping Action (520) (aperture oscillation) of their respective Energy Aperture (11a xxx 11n) when exposed to voltage stimulation (66/67), as further illustrated in Figure (5-2).

    Read it there → · on Figure (5-2)

In Application of Usage

  1. … gure (3-30) as to (270) of (3-34) ionizes the highly energized combustible gases to decrease atomic mass while 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) ... …

    Read it there → · on Figure (6-3)

Resistance (Rs)

  1. while, at the same time, conducting and permitting the transmission of "Voltage Potential" across circumference surface area (skin effect) (66/67) of Figure (7-11) as to Figure (590) of Figure (6-2) to bring-on and perform Voltage Wave-Guide phenomena (57) of Figure (6-2)

    Read it there → · on Figure (7-11)

  2. (66/67) of Figure (7-11)

    Read it there → · on Figure (7-11)

Inductance (FL)

  1. outer tapered surface (66)

    Capacitor (E9/E10) of figure (6-2) as to (720) of Figure (7-11) is formed when outer tapered surface (66) and inner tapered surface (67) forms Water-Gap (616) of Figure (7-11) as to Figure (590) of Figure (6-2) having placed there between Dielectric Water Bath (85/Re), as schematically illustrated in mat …

    Read it there → · on Figure (7-11)

Capacitance (Cd)

  1. applied voltage Potential (66/67)

    ... a resistive liquid (having an ohmic value of 78.54 ohms) that takes on an "Electrical Charge" when applied voltage Potential (66/67) of Figure (7-1) as to (650) of Figure (7-4) causes and sets up Molecular Polarization Alignment (617) of Figure (7-4) by way of electrical molecular rotation (opposite electrical attraction force to rotate and position particle alignment) of each water Molecule (85a - 85b - 85c - 85n). …

    Read it there → · on Figure (7-1)

  2. (66/67) of Figure (7-1)

    Read it there → · on Figure (7-1)

  3. In like manner, the stainless steel (s/s) T304 material that forms Voltage Zones (E9/EI0) undergo particle alignment of its atomic structure within the atomic infrastructure of plate-material (E9/E10) when exposed to the same applied electrical voltage fields (66/67) after a pre-set time

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  4. applied voltage Potential of opposite polarity (66/67)

    … forms capacitor (ER) of Figure (7-1) when the dielectric liquid of water (85) is placed or injected between electrical conducting plates (E9/E10) while applied voltage Potential of opposite polarity (66/67) is directly exposed to Water Molecules (85a xxx 85n), as depicted in Taper Resonant Cavity (590) of Figure (6-2) as to (650) of Figure (7-4).

    Read it there → · on Figure (6-2)

Inductance Reactance (Rs - Cd - FL)

  1. Positive Voltage Potential (66)

    while, at the same time, Inductor Field (L2-FL2) restricts electron movement through VIC Impedance Network Circuit (620) of Figure (7-1) since Inductance Field (FL2) locks onto Electrons Magnetic Field (547) of Figure (5-9) to block the movement of electron flow toward Positive Voltage Potential (66)

    Read it there → · on Figure (5-9)

  2. … only further electron-flow restriction (Rp1/Rp2) to both Inductor Chokes (56/62) but automatically increases voltage potential (xxx V g xxx Vh xxx Vn) of opposite voltage intensity of equal magnitude (66/67) across Resonant Cavity (140 -170)

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  3. Positive Voltage Potential (66)

    … ) that encourages, brings-on, and perform Voltage Inducement Process (580) of Figure (6-1) as to (620) of Figure (7-1) without amp "influxing" (inhibiting amp flow) between Positive Voltage Potential (66) and Negative Voltage Potential (67) electrically applied across Resonant Cavities (140 -170).

    Read it there → · on Figure (7-1)

In-Line Circuit Components

  1. Voltage Potential (66/67)

    Lengthening Inductor (L1/L2) lengths applies an even higher Voltage Potential (66/67) across Resonant Capacitor (140 -170) (ER) since Inductance Reactance "Stores" Energy and, is expressed by:

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8-2 - Traveling Voltage Wave-Guides

  1. positive electrical voltage surface (66/E9)

    The formation of tubular Traveling Voltage Wave-guide (570a) of Figure (7-12) (WFC Memo 426) as to (770) of Figure (8-1) is physically formed when positive electrical voltage surface (66/E9) and negative electrical voltage surface (67/E10) are placed in parallel space relationship to form voltage surfaces (E9/E10) about an cylindrical axis of rotation having space-gap (35) there between …

    Read it there → · on Figure (8-1)

  2. opposite polarity (67/66)

    … (730A) of Figure (7-12) as to (770A) of Figure (8-1) when space-gap (616) of Figure (720) exposes injected water bath (85) to unipolar pulse-oscillation of high voltage intensity of opposite polarity (67/66) as to (780) of Figure (8-2) which, in turn, propagates opposite electrical attraction force (RR' _ 88') of Figure (7-4), as illustrated in (590) of Figure (6-2) as to (585) of Figure (8-1).

    Read it there → · on Figure (8-2)

  3. … al (583) along the inside surface area of the chemically inert and non-oxidizing stainless steel (s/s) tubular material (E9/E1O) which physically dictates the shape and configuration of voltage waves (66/67)

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  4. The surface tension of water (584) adjacent to both voltage surfaces (E9 / EI0) further aids the transmission of voltage potential (66/67) since Electrical Charging Effect (585) of Figure (7-4) does not change or alter the dielectric value of water (Re).

    Read it there → · on Figure (7-4)

8-3 - Electrical Voltage-Pulse Wave-Transmission

  1. Positive Electrical Voltage Intensity (66)

    … n) is similarly formed since "Electron Clustering Effect" (631) of Figure (7-9) produces a "Negative Electrical Voltage Intensity (67) in equal magnitude to the "Positive Electrical Voltage Intensity (66) during each/repetitious magnetic pulse-cycle (Rp/71). …

    Read it there → · on Figure (7-8)

8-4 - State Space (Sp)

  1. During the electrical-formation (66- Vpa/Vpb - 67- Vpa/Vpb) of each opposite Electrical Voltage-Wave (66-583 - 67-602), opposite electrical attraction force (RR' - SS') of Figure (7-4) is produced across water cap (Cp) of Figure (7-8) which, now, sets up and defines the conditions of “State Space," as illustrated in (770 A/B) of Figure (8-1) as to (650) of Figure (7-4).

    Read it there → · on Figure (7-4)

  2. Electrical Voltage-Wave (66-583 - 67-602)

    During the electrical-formation (66- Vpa/Vpb - 67- Vpa/Vpb) of each opposite Electrical Voltage-Wave (66-583 - 67-602), opposite electrical attraction force (RR' - SS') of Figure (7-4) is produced across water cap (Cp) of Figure (7-8) which, now, sets up and defines the conditions of “State Space," as illustrated in (770 A/B) of Figure (8-1) as to (650) of Figure (7-4).

    Read it there → · on Figure (7-4)

  3. Pulse Wave-Form (66- 583/67-602)

    Electrical Attraction Force intensity (RR' - SS' as to RU/RU' - ST/ST' as to 550 of Figure 5-8) at Peak Voltage Potential (Vpp) is either increasing or decreasing or remaining constant as to Voltage Peak Excursion Point "P" trace-position which scans the exact Pulse Wave-Form (66- 583/67-602) being produced, as illustrated in (780B) of Figure (8-2).

    Read it there → · on Figure (8-2)

Propagating Electrical Stress

  1. ... thereby, preventing amp "in-fluxing" (discouraging electron arc over) across Dielectric Capacitor Gap (ER)(66/67) while Electrical Stress (ST-ST' - RU-RU') of Opposite Voltage Polarity (B+/B-) brings on Energy Priming Stage (520) of Figure (5-3) which is refer to, herein, as "Voltage Tickling of State Space."

    Read it there → · on Figure (5-3)

  2. … occur across capacitor Gap (Cp) while "Voltage Pulse-Potential" (Va xxx Vn/49a xxx 49n) of "Opposite polarity" (B+/B-) is/are allowed to be applied across "Electrical Voltage Plates" (Voltage-Zones) (66/67).

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Quartz Tube Configuration & Operational Parameters

  1. Voltage Wave-Guides (66/67)

    The Electrical Conduction Zone (587) (Skin Effect) between the dielectric gas medium (919) and the Electrical Contact Surface of the inside surface area of the Voltage Wave-Guides (66/67) allows Unipolar Pulse Train (583a/602a-583b/602b - 583n/602n) to travel the entire length of the Voltage Wave Guides that make up Voltage Zones (66/E9 – 67/E10).

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  2. Voltage Zones (66/E9 – 67/E10)

    The Electrical Conduction Zone (587) (Skin Effect) between the dielectric gas medium (919) and the Electrical Contact Surface of the inside surface area of the Voltage Wave-Guides (66/67) allows Unipolar Pulse Train (583a/602a-583b/602b - 583n/602n) to travel the entire length of the Voltage Wave Guides that make up Voltage Zones (66/E9 – 67/E10).

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  3. ... thereby, establishing functional parameters of Optical Thermal Lens (980) of Figure (10-2) when Voltage Intensifier Circuit (VIC Circuit) (10-1) is electrically connected to Voltage Zones (ER) (66/Ell-67/E12).

    Read it there → · on Figure (10-1)