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Stan’s Legacy

(56) · also written as a run, 56a xxx 56n

Resonant Charging Choke

Also written Inductor · resonant charging chokes · Forming Resonant Charging Chokes · inductor coils · primary coil · Choke-Coils · choke coil · Resonant Charging Chokes Stages and 12 more

Where it is first named

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).
Voltage Intensifier Circuit (60)

How it is written

56a xxx 56n is Meyer's shorthand for a run of the same thing: 56a is the first, 56n the last, and the x's stand for however many lie between. Every stage of the run is this one numeral. A pair before the letters, 583/602a, is a run of two things that go together, one of each per stage.

Drawings 130

Where it is named · 60

Voltage Intensifier Circuit (60) 14×

  1. resonant charging choke (56)

    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. inductor coils (56/57)

    ...allowing magnetic fields of both inductor coils (56/57) to collapse ... forming pulse train (64a xxx 64n).

    Read it there →

  3. Resonant charging choke (56)

    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)

  4. Inductor (56)

    Inductor (56) and capacitor (57) properties of LC circuit (180) is therefore "tuned" to resonate at a given frequency.

    Read it there →

  5. inductance (56)

    Resonant frequency (63) of Figure (3-19) can be raised or lowered by changing the inductance (56) and/or capacitance (57) valves.

    Read it there → · on Figure (3-19)

  6. inductor (56)

    The value of inductor (56), value of capacitor (57), and the pulse-frequency (63) of voltage (Yo xxx Vn) being applied across the LC circuit determined the impedance of LC circuit (Figure 3-28).

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

  7. inductor (56)

    The impedance of inductor (56) and capacitor (57) in series, Z series is given by (Eq 1)

    Read it there →

  8. inductor (56)

    The voltage across inductor (56) or capacitor (57) is greater than applied voltage (49) of Figure (3-18).

    Read it there → · on Figure (3-18)

  9. inductor (56)

    The voltage (VI) across inductor (56) is given by equation (Eq 6)

    Read it there →

  10. Inductor (56)

    Inductor (56) is made of or composed of resistive wire to further restrict D.C. current flow beyond inductance reaction (Xl), and, is given by (Eq 8)

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  11. inductor (56)

    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)

  12. inductor (56)

    Inductor (62) in relationship to inductor (56) electrically balances the opposite electrical potential across voltage zone (66/67).

    Read it there →

  13. resonant charging chokes (56/62)

    Amp restriction beyond "resonant action" occurs when unipolar magnetic field coupling (71) of Figure (3-23) is allowed to simultaneously drop (pulsating magnetic field) across both resonant charging chokes (56/62) during pulsing operations since electron mass is an electromagnetic entity which is subject to inductor fields (56/62) produced by pulsating magnetic field (71a xxx 71n) of Figure (3-23).

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

  14. subject to inductor fields (56/62)

    Amp restriction beyond "resonant action" occurs when unipolar magnetic field coupling (71) of Figure (3-23) is allowed to simultaneously drop (pulsating magnetic field) across both resonant charging chokes (56/62) during pulsing operations since electron mass is an electromagnetic entity which is subject to inductor fields (56/62) produced by pulsating magnetic field (71a xxx 71n) of Figure (3-23).

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

Gas Processor

  1. Resonant Charging Choke (56)

    … f 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 (60) to cause and convert liberated electrons (117a xxx 117n) into radiant heat - energy (Kinetic energy) (113) in the form …

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

Water Fuel Injector (Taper Resonant Cavity Chamber)

  1. Resonant Charging Chokes (56/57)

    ... forming a capacitor (E7 / E8) in series with Resonant Charging Chokes (56/57) placed on opposite sides of Resonant Cavity Zone (35) as to Figure (7) and (8) . . . forming a Resonant Pulsing Circuit (110) of Figure (7) with step-up Pulsing Transformer (33/36), as shown in (220) of Figure (18).

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  2. Resonant Charging Chokes (56/57)

    Sequential Switch Circuit (59) simply switches in and out Booster Pickup Coils (61a xxx 61n) in series electrical hookup with Secondary Coil (53) output to elevate voltage intensity across Resonant Charging Chokes (56/57).

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  3. Forming Resonant Charging Chokes (56/57)

    Forming Resonant Charging Chokes (56/57) by using Stainless Steel Electro-Inductance wire-material (430F / T304 or equivalent) which, when electrically pulsed transmits voltage intensity while restricting amp flow during Resonant Pulsing operations. …

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  4. … Together, the resistive valve of Stainless Steel wire-coil (56/57) and its inductance generated electromagnetic field (62) of Figure (19) opposes the movement of electrons since the dielectric valve of wire-coils (56/57) inhibits electron exchange while the generate …

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  5. … Together, the resistive valve of Stainless Steel wire-coil (56/57) and its inductance generated electromagnetic field (62) of Figure (19) opposes the movement of electrons since the dielectric valve of wire-coils (56/57) inhibits electron exchange while the generated inductance field (62) locks onto the electromagnetic field of the electrons ...generated coil inductance field (62) being greater in electromagnetic... …

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  6. stainless steel induction coil (56/57)

    In other words, the inductance and capacitance values of stainless steel induction coil (56/57) bypasses voltage drop across its resistive load (ohmic valve of wire).

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Amp Inhibiting Circuit Vs Voltage Enhancement

  1. Resonant Charging Choke (56)

    … ) of electromagnetic field-strength (Rpla xxx Rpin = Rp2a xxx Rp2n) (mutual induction) when applied Pulse-Voltage Frequency (49a xxx 49n) passes through the positive energized Resonant Charging Choke (56).

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Water Fuel Injector

  1. ... dielectric value of water being 78.54 since water molecule (85) oxygen atom "L" orbit (76) occupies the maximum allowance eight electrons (79a xxx 79n), calibrated gated unipolar pulse train (64a xxx 64n) of Figure (3-20) is outputted from resonant choke (56) and electrically transmitted to positive outer conical surface (E9);

    Read it there → · on Figure (3-20)

Tri - Coil Construction

  1. Resonant Choke Coils (56/62)

    Resonant Choke Coils (56/62) of Figure (3-23) (Memo WFC 422 DA) are composed of 430F or 430FR inductance stainless steel film coated (hi dielectric value) wire (typically .004 Ga. …

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

Instant Explosion of Water

  1. Resonant Charging Chokes (56/62)

    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 (7-9) to help promote Step Charging Effect (628) of Figure (7-7) by …

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

  2. (56/62) of Figure (3-22)

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

  3. Resonant Charging Choke (56)

    ... Diode (55) being placed between Secondary Pickup Coil (52) and Resonant Charging Choke (56) to act as an electronic switch in open-position during pulse off-time (T2) of Figure (7-8) while preventing electron flow in reverse direction when Inductor (L1) collapsing electromagnetic field (FL1) produces another unipolar pulse wave-form (64a - 64b).

    Read it there → · on Figure (7-8)

  4. Inductor Coil (56)

    ... outputting Voltage-wave signal (64a xxx 64n) being a pulse-frequency doubler due to Inductance Reactance (FL) of Inductor Coil (56) of Figure (3-22) when collapsing magnetic field (FL) of Figure (7-3b) re-cuts coil-wrap (Ll) during each pulse off-time (T2)

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

  5. (56) of Figure (3-22)

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

Inductance Reactance (Rs - Cd - FL)

  1. Inductor Chokes (56/62)

    … to VIC Coil Assembly (580) of Figure (6-1) enters into and passes through both Inductors (L1/L2) simultaneously and offers not 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)

    Read it there → · on Figure (6-1)

Circuit Resistance

  1. (Z2) is determined by inductance field strength (FL1) and resistive value (RS1) (typically 11.6 KQ) of stainless steel (s/s) wire-coil (56) (LI) when being exposed to external magnetic coupling field strength (Rp),

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  2. ... each choke-coil (LIIL2) being of the same impedance value since both coil-wraps (56/62) are Bifilar wound together onto a single spool-bobbin, (Re) is the dielectric property of water and it's resistive value is typically (78.54 Q) since "rain water" (85f) contains less than 20ppm of any type of contaminates due to Water Evaporation Process (530) of Figure (5-6).

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Transformer Action

  1. (L1) and (L2) are the inductances of each individual choke coil (56)(62) in series with Secondary Coil (52) Electrical Voltage Potential (700) of Figure (7-9) and being exposed to the same Voltage Transformer (26 - 53 - 52) magnetic field (Rp) with aiding fields,

    Read it there → · on Figure (7-9)

  2. Inductor Coils (26 - 52 - 56 - 62)

    VIC Coil Assembly (580) of Figure (6-1) as to (690) of Figure (7-8) in reference to Schematic Circuit (620) of Figure (7-1) is constructed in such a way as to rotate and position Inductor Coils (26 - 52 - 56 - 62) to be of the same electromagnetic polarity orientation, indicator mark (e)

    Read it there → · on Figure (7-1)

  3. Choke-Coils (56/62)

    ... producing "Electrical Stress" (SS' - RR') (B+/B-) across Water Gap (Cp) since both Choke-Coils (56/62) conduct voltage potential (Negative or Positive) during pulsing operations.

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Electron Bounce Phenomenon

  1. … Vn) (SS' - 617 -RR') is accomplished when magnetic flux lines of force (71a xx 71n) (Rp) emanating away from closed-loop magnetic pulsing core (53) of Figure (190) penetrates Inductance coil-windings (52 - 56 - 62) simultaneously during each and every pulse on-time (T1a xxx T1n) as programmable pulse-train (49a xxx 49n T3 - 49a xxx 49n) is adjusted to "Tune - in" to the dielectric property of Water (Re)

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  2. inductance coils (52 - 56 - 62)

    .... causing mutual inductance (μ1) (see equations Eq 28 thru Eq 30) to transform Distributed Capacitance (Cda xxx Cdn) of Figure (7-3) of each inductance coils (52 - 56 - 62) into a coherent Voltage Potential (Yo •..• Vn) equaling the sum of Voltage Potential (Vp) developed across each Pickup Coils (VpT + Vp1 + Vp2)

    Read it there → · on Figure (7-3)

  3. choke coil (56)

    … (690) of Figure (7-8) is further expressed in the following equation: Where, (Lt cc) is the total inductance of Choke Coils (FL1 - FL2), (L1) and (L2) are the inductance of each individual choke coil (56)(62) in series with Secondary Coil (52) Electrical Voltage Potential (700) of Figure (7-9) and being exposed to the same Voltage Transformer (26 - 53 - 52) magnetic field (Rp) with aiding fields, (M) …

    Read it there → · on Figure (7-9)

  4. choke-coil (56)

    Collectively, the resultant positive electrical charged copper ions (642a xxx 642n) added together produces Positive Voltage Potential (629) being electrically applied to choke-coil (56);

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  5. Choke Coil (56)

    Sustaining and maintaining the resultant induced Voltage Potential (Vo - Vn) without "Electron Discharged" (inhibiting electron flow) through Choke Coil (62) while, at the same time, inhibiting (preventing) any additional or other electrons from entering into Secondary copper wire-zone (52) by way of Choke Coil (56) is herein called "Electron Bounce Phenomenon" (EbP), as illustrated in (700) of Figure (7-9).

    Read it there → · on Figure (7-9)

8-3 - Electrical Voltage-Pulse Wave-Transmission

  1. Resonant Charging Chokes (56/Z2 – 62/Z3)

    The newly established leading voltage edge (Vpa) and trailing voltage edge (Vpb) being uniform in shape/configuration since both Resonant Charging Chokes (56/Z2 – 62/Z3) resistive values are the same (Typically 11.6 kΩ each) and incoming signal (49a xxx 49n) is electrically linked with Water-Gap Capacitor (Cp) of Figure (7-8) having dielectric liquid of Water (85) there between.

    Read it there → · on Figure (7-8)

  2. Resonant Charging Chokes (56/62)

    … Remember, Secondary Voltage pickup coil (52) of Figure (7-8) displaces and separates Resonant Charging Chokes (56/62) on opposite end of said Secondary Pickup Coil (52).

    Read it there → · on Figure (7-8)

Propagating Electrical Stress

  1. Resonant Charging Choke (56)

    The energized "Resonant Charging Choke" (56) of Figure (7-1) as to Figure (10-1) by way of input voltage-pulses (49a xxx 49n) creates an electromagnetic coupling field (Rp1) of Figure (7-8) due to its self-inductance (640) of Figure 7-3B) crosses over and passes through electrically ground connected Resonant Charging Choke (62), as so illustrated in Figure (10-1)

    Read it there → · on Figure (7-1)

  2. Resonant Charging Choke (56)

    "Resonant Charging Choke" (56) of Figure (7-1)

    Read it there → · on Figure (7-1)

  3. primary coil (56)

    ... forming "Mutual Inductance Fields" (Rp1/Rp2) once secondary coil (62) is electromagnetically energized by primary coil (56) and vice versa

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  4. … The length and diameter size of the copper-wire spiral wrapped coil (56/62) of Figure (10-1) being paired together and electrically energized in conjunction with applied Voltage Pulse-Frequency determines how much "Amp Leakage" will occur across capacitor Gap (Cp) while "Vol …

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

  5. Resonant Charging Chokes (56/62)

    To reduce amp leakage still further, the copper wire of both Resonant Charging Chokes (56/62) can be replaced with a magnetically inductive stainless steel wire (430F/FR) having a resistive value (Ohms) to the flow of electrons while taking on the capacitance and inductance characteristic of a coil wire.

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  6. Resonant Charging Choke (56)

    … tic field-strength (Rp1a xxx Rp1n - Rp2a xxx Rp2n) (mutual induction) when applied Pulse-Voltage frequency (49a xxx 49n) of Figure (3-34) passes through the positive energized Resonant Charging Choke (56).

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

Voltage to Amp Differential Ratio

  1. Resonant Charging Chokes Stages (56/62a xx 56/62n + SS56/62a xxx SS56/62n)

    … Figure (8-1) is simply produced when Programmable Variable Pulse-Width Pulse-Train Waveform (49a xxx 49n) is allowed to be electrically transmitted through and beyond Resonant Charging Chokes Stages (56/62a xx 56/62n + SS56/62a xxx SS56/62n) of Figure (10-4) that are not only electrically connected in sequential order but likewise magnetically linked by Inductance Coupling field (511/512a xxx 511/512n), as so pictorially illustrated in ( …

    Read it there → · on Figure (10-4)

  2. … etc.) of Figure (10-4) in "Sequential Order" (-S-) since the total number of Multi-Coil Magnet bifilar coils (56/62a xxx 56/62n) serially electrically connected together are sequentially electrically linked to an equal number of serially electrically aligned Stainless Steel Resonant Coils (SS/56/62a xxx SS/56/62n)

    Read it there → · on Figure (10-4)

  3. bifilar coil assembly (56/62a xxx 56/62n -S- SS56/62a xxx SS56/62n)

    ... allowing each/both bifilar coil assembly (56/62a xxx 56/62n -S- SS56/62a xxx SS56/62n) to be electrically and magnetically energized in the same progressive direction toward Water Gap (Cp) and away from blocking diode (55) of Figure (3-34) as to Figure (10-1) and Figure (10-3)

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

  4. Magnet Coil-Stage Assembly (56/62a xxx 56/62n)

    Stainless Steel bifilarCoil-Stage Assembly (SS56/62a xxx SS56/62n) is electrically placed between Magnet Coil-Stage Assembly (56/62a xxx 56/62n) and Water Gap (Cp) to obtain optimum Voltage to Amp Differential Ratio (Vhighest:Alowest ratio).

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  5. Coil Stages (56/62a xxx 56/62n + SS56/62a xxx SS56/62)

    Together, Coil Stages (56/62a xxx 56/62n + SS56/62a xxx SS56/62) added/stacked sequentially into a single overall coil-array assembly (990A/B) of Figure (10-3) forms Amp Inhibiting Network (Figure 8XA) as to (970) of Figure (10-1) (hereinafter called VIC Multi-Coil Spool Assembly).

    Read it there → · on Figure (10-3)

  6. Coil-Wire (56/62)

    The magnet Coil-Wire (56/62) is best suited for Voltage inducement while the inductance/capacitance/resistance properties of Stainless Steel coil-wire (SS56-SS62) is appropriately used to restrict electron movement beyond the self-inductance of each energized coil when elevated voltage levels (up to beyond 40 kilovolts) are to be reached/obtained without experiencing any appreciable amount of "Amp Influxing."

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  7. Generally, magnet coil-wire length is longer than the Stainless steel coil-wire length and magnet bifilar-coil (56/62) is placed on top of Stainless Steel bifilar-coil (SS56/62) to maximize mutual inductance coil-field (Rp2) (adding Rp1+Rp2) of (690) of Figure (7-8) to cause coil capacitance (Cda xxx Cdn) to help maintain and even increase pulse voltage amplitude (xxx Vn + Vn 1 + Vn2 + Vn .... …

    Read it there → · on Figure (7-8)

  8. In all cases, bifilar coils (56/62 - SS56/62) are electromagnetically orientated in the same direction.

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Optical Thermal Lens

  1. ... forming Capacitor Gap (Cv) since the gas medium, so exhibits a dielectric value and amp in-fluxing (prohibiting amp leakage into and away from Capacitor Vacuum-Gap (Cv)) is held to a minimum due to the bifilar wrapped resonant-coils (56/62).

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VIC Switchover Circuit

  1. The simultaneous formation of both the positive voltage field (952) and the negative voltage field (953) is simply accomplished by the mutual electromagnetic inductance coupling field that is produced between the two bifilar wrapped coils (957/56 - 958/62) when the primary coil (957/56) is electrically energized by incoming voltage pulse train (T4a xxx T4n), as so illustrated in (970) of Figure (10-1).

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

  2. primary coil (957/56)

    The simultaneous formation of both the positive voltage field (952) and the negative voltage field (953) is simply accomplished by the mutual electromagnetic inductance coupling field that is produced between the two bifilar wrapped coils (957/56 - 958/62) when the primary coil (957/56) is electrically energized by incoming voltage pulse train (T4a xxx T4n), as so illustrated in (970) of Figure (10-1).

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

Appendix B - Glossary of Applicaiton Notes

  1. Choke-Coils (56/62)

    … producing "Electrical Stress" (SS' - RR') (B+/B-) across Water Gap (Cp) since both Choke-Coils (56/62) conducts voltage potential (Negative or Positive) during pulsing operations.

    Read it there →