(52)
Secondary Coil
Also written Secondary pickup coil · pickup coil · Blocking Diode · Secondary Coil-Winding · Once Secondary Coil-winding · Voltage Transformer · Secondary Pickup Coil-winding · Secondary copper wire-zone and 8 more
Where it is first named
variable amplitude pulse-train (51a xxx 51n) of Figure (3-19) is electromagnetically coupled (transformer action) to secondary coil (52) of Figure (3-22) by way of pulsing core (53) of Figure (3-23) as to Figure (3-22).
How it is written
- (52) 37×
- (26/52) 4× with (26) Primary Coil
- (26 - 53 - 52) 2× with (26) Primary Coil, (53) Pulsing Core
- (52 - 56 - 62) 2× with (56) Resonant Charging Choke, (62) Resonant Charging Chokes
- (26 - 52 - 56 - 62) 1× with (26) Primary Coil, (56) Resonant Charging Choke, (62) Resonant Charging Chokes
- (52/53) 1× with (53) Pulsing Core
Drawings 95
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Figure (3-22) · Analog Voltage generator (40)
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Figure (3-22) · Voltage Amplitude Control Circuit (50)
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Since pickup coil (52) is also composed of or made of resistive wire-coil, then, total circuit resistance is given by (Eq 9) · Voltage Intensifier Circuit (60)
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Figure (3-23) · Voltage Intensifier Circuit (60)
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Figure (3-22) · Voltage Intensifier Circuit (60)
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Figure (3-22) · Voltage Dynamics
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Figure (3-23) · Voltage Dynamics
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Voltage Intensifier Circuit (60) of Figure (3-22) · Gas Processor
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Carries this number · WFC 422DA - Illustrations
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Carries this number · WFC 422DA - Illustrations
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Carries this number · Water Fuel Injection System
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Carries this number · Electronic Circuit Design
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Electronic Circuit (110) of Figure (7) · Water Fuel Injector (Taper Resonant Cavity Chamber)
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Figure (4-9) · Water Fuel Injection System - Page 2
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(110) of Figure (4-9) · In Application of Usage
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coil-structures (580) of Figure (6-1) · Voltage Intensifier Coil-Assembly
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(190) of Figure (3-23) · Tri - Coil Construction
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Carries this number · VIC Matrix Circuit
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Voltage Intensifier Circuit (60) of Figure (3-22) · Instant Explosion of Water
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Voltage Intensifier Circuit (620) of Figure (7-1) · Instant Explosion of Water
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(56/62) of Figure (3-22) · Instant Explosion of Water
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(700) of Figure (7-9) · Instant Explosion of Water
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(T2) of Figure (7-8) · Instant Explosion of Water
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(56) of Figure (3-22) · Instant Explosion of Water
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(620) of Figure (7-1) · Instant Explosion of Water
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Figure (7-8) · Resistance (Rs)
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(110) of Figure (4-9) · Resistance (Rs)
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(620) of Figure (7-1) · Resistance (Rs)
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(690) of Figure (7-8) · Resistance (Rs)
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Figure (7-13) · Inductance (FL)
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(614) of Figure (7-1) · Inductance (FL)
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(580) of Figure (6-1) · Inductance (FL)
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(690) of Figure (7-8) · Inductance (FL)
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Inductor (614) of Figure (7-1) · Inductance (FL)
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(614) of (7-1) · Inductance (FL)
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Figure (7-1) · Capacitance (Cd)
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(690) of Figure (7-8) · Capacitance (Cd)
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(690) of Figure (7-8) · Inductance Reactance (Rs - Cd - FL)
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"Electron Bounce" phenomenon (700) of Figure (7-9) · Inductance Reactance (Rs - Cd - FL)
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Inductance Pulsing-Core (190) of Figure (3-23) · Inductance Reactance (Rs - Cd - FL)
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Figure (7-8) · Inductance Reactance (Rs - Cd - FL)
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(620) of Figure (7-1) · Inductance Reactance (Rs - Cd - FL)
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(580) of Figure (6-1) · Multi-layer Coil
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(690) of Figure (7-8) · Taper Resonant Capacitor (ERt)
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690 of Figure 7-8 · Circuit Resistance
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The turns ratio of the VIC Transformer (26/52) is determined by the following equation: · Transformer Action
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(L1) and L2) are the inductances of each individual transformer coils (26)(52), · Transformer Action
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"Electron Clustering" (Grouping/collecting negative charged particles at a given point) (700) of Figure (7-9) · Transformer Action
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Choke-Coil (62) of Figure (7-1) · Transformer Action
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Carries this number · Electron Bounce Phenomenon
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(52) of Figure (7-8) · Electron Bounce Phenomenon
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(700) of Figure (7-9) · Electron Bounce Phenomenon
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... causing "electron clustering" (641a xxx 641n) to take place within Copper Wire Zone (52) during pulse on- time (T1) · Electron Bounce Phenomenon
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(see 740 of Figure 7-13) · Voltage Amplitude Switch-Off
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Carries this number · WFC 426 - Illustrations
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Carries this number · WFC 426 - Illustrations
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Carries this number · WFC 426 - Illustrations
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(580) of Figure (6-1) (WFC memo 425) · 8-2 - Traveling Voltage Wave-Guides
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(690) of Figure (7-8) · 8-2 - Traveling Voltage Wave-Guides
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(631) of Figure (7-9) · 8-3 - Electrical Voltage-Pulse Wave-Transmission
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(52) of Figure (7-8) · 8-3 - Electrical Voltage-Pulse Wave-Transmission
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(Cp) of Figure (7-8) · 8-4 - State Space (Sp)
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(620) of Figure (7-1) · 8-6 - VIC Voltage Sync-Pulse Circuit
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(690) of Figure (7-8) · 8-6 - VIC Voltage Sync-Pulse Circuit
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(Cp) of (7-8) · 8-6 - VIC Voltage Sync-Pulse Circuit
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Carries this number · WFC 427 Illustrations
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Voltage Intensifier Circuit (110) of Figure (4-9) · WFC Exhaust Air Reclaimer
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"Resonant Charging Choke" (56) of Figure (7-1) · Propagating Electrical Stress
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Figure (3-34) · Propagating Electrical Stress
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Voltage Intensifier Circuit (60) of Figure (3-22) · Propagating Electrical Stress
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Blocking Diode (52) of Figure (4-9) · Propagating Electrical Stress
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(60) of Figure (3-22) · Propagating Electrical Stress
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(580) of Figure (6-1) · Voltage to Amp Differential Ratio
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(620) of figure (7-1) · Voltage to Amp Differential Ratio
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Figure (1-4) · LC Circuit
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Figure (3-20) · Voltage Intensifier Circuit (60)
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The figure it sits on · WFC 422DA - Illustrations
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The figure it sits on · Electronic Circuit Design
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(80) of Figure (4) · Water Fuel Injector (Taper Resonant Cavity Chamber)
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(FI) of Figure (7-3b) · Instant Explosion of Water
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(710) of Figure (7-10) · Inductance (FL)
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Figure (7-3) · Inductance (FL)
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(710) of Figure (7-10) · Capacitance (Cd)
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(640) of Figure (7-3) · Capacitance (Cd)
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Figure (7-3) · Multi-layer Coil
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... each bobbin cavity adhering to equation (Eq 20), as illustrated in (710) of Figure (7-10). · Transformer Action
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(710) of Figure (7-10) · Transformer Action
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Distributed Capacitance (Cda xxx Cdn) of Figure (7-3) · Electron Bounce Phenomenon
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The figure it sits on · WFC 426 - Illustrations
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The figure it sits on · WFC 426 - Illustrations
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(690) of Figure (7-8) · Propagating Electrical Stress
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"bifilar" wrapped coils (Figure 7-3) · Propagating Electrical Stress
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Figure (1-4) · Propagating Electrical Stress
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The figure it sits on · WFC 429 - Illustrations
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The figure it sits on · VIC Switchover Circuit
Where it is named · 47
Voltage Intensifier Circuit (60) 6×
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secondary coil (52)
variable amplitude pulse-train (51a xxx 51n) of Figure (3-19) is electromagnetically coupled (transformer action) to secondary coil (52) of Figure (3-22) by way of pulsing core (53) of Figure (3-23) as to Figure (3-22).
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secondary coil (52)
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).
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Pulsing transformer (26/52)
Pulsing transformer (26/52) of Figure (3-22) steps up voltage amplitude or voltage potential (Vo xxx Vn) of Figure (3-19) during pulsing operations.
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secondary coil (52)
Voltage amplitude or voltage potential (Vo xxx Vn) is increased when secondary coil (52) is wrapped with more turns of wire.
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secondary coil (52)
Switching diode (55) of Figure (3-22) not only acts as a blocking diode by preventing electrical "shorting" to secondary coil (52) during pulse off-time (69) of Figure (3-20) since diode (55) "only" conducts electrical energy in the direction of schematic arrow;
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pickup coil (52)
Since pickup coil (52) is also composed of or made of resistive wire-coil, then, total circuit resistance is given by (Eq 9)
Water Fuel Injector (Taper Resonant Cavity Chamber) 1×
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Adjusting Pulse-train (210a xxx 210n) in such a way as to allow pulse off-time (T2) to be synchronized with collapsing and re-formation of electromagnetic field coupling across pulsing transformer (52/53) to produce unipolar pulse frequency (T1a xxx T1n), as illustrated in (220) of Figure (18) as to Figure (17).
Tri - Coil Construction 1×
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Secondary pickup coil (52)
Secondary pickup coil (52) of Figure (3-23) is, also, composed of individual spiral wrapped coils (505a xxx 505n) (typically .002 Ga. magnet wire) electrically connected in sequential order to form bobbin cavity (506) which is placed on top of and in space relationship to primary coil cavity (504).
Instant Explosion of Water 1×
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Secondary Pickup Coil (52)
... 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).
Circuit Resistance 3×
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Secondary Pickup Coil (52)
(Rl) is the resistive value of Secondary Pickup Coil (52) of Figure (7-8) plus Magnetic Field strength of primary coupling field (71) in direct relationship to inductance field strength (Rp) which is determined by the number of turns of wire that make up secondary coil-wrap (52),
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(Rl) is the resistive value of Secondary Pickup Coil (52) of Figure (7-8) plus Magnetic Field strength of primary coupling field (71) in direct relationship to inductance field strength (Rp) which is determined by the number of turns of wire that make up secondary coil-wrap (52),
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(52) of Figure (7-8)
Transformer Action 13×
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Secondary Pickup Coil-winding (52)
… 3) of Figure (6-1) composed of "Grain Oriented" Electrical Steel laminations step up applied Voltage (49) when Magnetic Field Coupling (71) of Figure (7-8) cross over to Secondary Pickup Coil-winding (52) which has more turns of wire than Primary Coil- winding (26) by way of "Eddy" currents that induce magnetic flux lines of forces (71a xxx 71n) emanating away from magnetic core material (53) and caus …
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Secondary Coil-Winding (52)
(Is) is the established current flow (under load) in Secondary Coil-Winding (52) ,
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VIC Transformer (26/52)
The turns ratio of the VIC Transformer (26/52) is determined by the following equation:
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Coil-Wrap (52)
(Ns) is the number of turns of wire for each bobbin cavity (505) of Figure (6-1) as to (710) of Figure (7-10) that are electrically connected in series arrangement (505a xxx 505n) to form Secondary Coil-Wrap (52),
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Secondary Pickup Coil (52)
(1'2) is the sum of the magnetic field strength (FL4) of the primary coil (26) and the induced magnetic field (FL3) of the Secondary Pickup Coil (52) during each pulse cycle (T1) in direct relationship to repetitive pulse cycling (T1a xxx T1n) and both magnetic fields (FL3/FL4) interacting, and is expressed in the following equation:
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(La) is the total inductance of Primary coil (26) and Secondary coil (52) with fields aiding Coupling Inductance (Rp) between the Primary coil (26) and Secondary Coil (52) is further extrapolated in the following equation:
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Secondary Coil (52)
(La) is the total inductance of Primary coil (26) and Secondary coil (52) with fields aiding Coupling Inductance (Rp) between the Primary coil (26) and Secondary Coil (52) is further extrapolated in the following equation:
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(L1) and L2) are the inductances of each individual transformer coils (26)(52),
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(M) is the mutual inductance of each transformer coil (26/52) being in parallel relationship with fields aiding Coupling Inductance (Rp1) and (Rp2) in (690) of Figure (7-8) is further expressed in the following equation:
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Secondary Coil (52)
(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,
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Voltage Transformer (26 - 53 - 52)
(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,
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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)
Electron Bounce Phenomenon 15×
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… 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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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)
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Secondary coil (52)
Where, (M) is the mutual inductance expressed in the same units as (La), (La) is the total inductance of Primary coil (26) and Secondary coil (52) with fields aiding.
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Secondary Coil (52)
Coupling Inductance (Rp) between the Primary coil (26) and Secondary Coil (52) is further extrapolated in the following equation: Where, (Lt) is the total inductance, (L1) and L2) are the inductance of each individual transformer coils (26)(52), (M) is the mutual inductance of each transformer coil (26/52) being in parallel relationship with fields aiding.
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Coupling Inductance (Rp) between the Primary coil (26) and Secondary Coil (52) is further extrapolated in the following equation: Where, (Lt) is the total inductance, (L1) and L2) are the inductance of each individual transformer coils (26)(52), (M) is the mutual inductance of each transformer coil (26/52) being in parallel relationship with fields aiding.
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transformer coil (26/52)
Coupling Inductance (Rp) between the Primary coil (26) and Secondary Coil (52) is further extrapolated in the following equation: Where, (Lt) is the total inductance, (L1) and L2) are the inductance of each individual transformer coils (26)(52), (M) is the mutual inductance of each transformer coil (26/52) being in parallel relationship with fields aiding.
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Secondary Coil (52)
… sed 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) is the mutual inductance of choke coils …
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Voltage Transformer (26 - 53 - 52)
… (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) is the mutual inductance of choke coils (L1/L2) since Transformer Magnetic Field (Rp) is the excitation External Magnetic Field (Rp1/Rp2) by way of Unipola …
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Secondary Coil-winding (52)
Magnetic Field Coupling (71) of Figure (7-9) entering into and passing through Secondary Coil-winding (52) of Figure (7-8) causes and produces copper ions (643a xxx 643n) (Positive Charged atoms 542a xxx 542n having missing electrons) when moving external electromagnetic field strength (71a xxx 71n) is su …
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… en moving external electromagnetic field strength (71a xxx 71n) is sufficient enough to dislodge electromagnetically charged electrons (641a xxx 641n) from copper atoms making up copper wire material (52).
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(52) of Figure (7-8)
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Secondary Wire (52)
whereas, the "Liberated" negative electrical charged electrons (641a xxx 641n) added together provides Negative Voltage Potential (631) to the opposite end of Secondary Wire (52) being electrically connected to choke coil (62).
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Once Secondary Coil-winding (52)
Once Secondary Coil-winding (52) is de-energized by the removal (collapsing magnetic field during pulse off-time T2 of external Magnetic Field (71), the dislodged electrons (641a xx 641n) return to positive charged copper ions (642a xx 642n)
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Secondary copper wire-zone (52)
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).
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Copper Wire Zone (52)
... causing "electron clustering" (641a xxx 641n) to take place within Copper Wire Zone (52) during pulse on- time (T1)
Voltage Amplitude Switch-Off 1×
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Secondary Coil (52)
Switching the member of Secondary Coil-Array (505a xxx 505n) maximizes electrical power transfer from Primary Coil (26) to Secondary Coil (52) by keeping Voltage Amplitude of Pulse-train (49a xx 49n - T3 - 49a xxx 49n) constant.
8-3 - Electrical Voltage-Pulse Wave-Transmission 3×
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… 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).
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Secondary Pickup Coil (52)
… 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).
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(52) of Figure (7-8)
Propagating Electrical Stress 3×
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Blocking Diode (52)
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)
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Blocking Diode (52)
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)