established VIC
Component arrangement of VIC 9XA/20YA retards or prevents amp flow
The component arrangement of the Voltage Intensifier Circuit (9XA as to 20YA) retards or prevents amp flow through the circuit.
Bench
466 published findings from the ongoing work — what has been established, calculated and observed at the bench, each traceable to the session that produced it.
3 of 466 findings have been tied to a device. The rest are grouped by the subsystem they were filed under, which is a broader claim: a note under Electrical Particle Generator has been said to be about the subsystem, not about any one of its four units.
established VIC
The component arrangement of the Voltage Intensifier Circuit (9XA as to 20YA) retards or prevents amp flow through the circuit.
established VIC confidence 0.80
Only several gigavolts (billionths of a volt) of applied power are needed to initiate molecular orientation; an amp restricting circuit (9XA, per Figure 20YD) allows this orientation process to occur...
established VIC
The purpose of the Magnetic Spin Generator circuit stage is to oscillate a permanently magnetic field through a pickup coil without particle acceleration, using dual orientation coils (12/13) on oppos...
established VIC
Seven recurring mistakes in resonant HV transformer design, worth checking a sweep spec against: (1) resonating only the nominal L and C while ignoring parasitic elements that can shift the real opera...
established VIC
Primary-side and secondary-side (choke-side and cell-side) inductance/capacitance/resistance values must be referred to the SAME side before comparing them — raw measured values are not directly compa...
established VIC
An HV resonant transformer/tank system is better understood as two coupled resonators (primary/choke side, secondary/cell side) exchanging energy through mutual inductance M = k·√(L₁L₂), 0 ≤ k ≤ 1. Tw...
established VIC
At series resonance, V_L ≈ V_C ≈ Q·V_drive, so a higher loaded Q does produce higher voltage magnification. But excessive Q also produces: larger circulating current, narrower useful bandwidth, greate...
established VIC
A real HV step-up transformer's leakage inductance and self/inter-winding capacitance are usually called "parasitics" because in an ordinary transformer they cause ringing and voltage spikes. But in a...
observation VIC
Heinz Raether (1940s) showed a Townsend avalanche cannot grow smoothly forever: at ~10⁸ electrons (α·d ≈ 18-20, Meek criterion) the avalanche head's own space-charge field rivals the applied field and...
observation VIC
Friedrich Paschen (1889) measured that spark breakdown voltage is a function of the PRODUCT p·d, not pressure or gap alone: V_b = B·p·d / ln[A·p·d / ln(1+1/γ)]. The curve is U-shaped: too little p·d a...
observation VIC
One field-accelerated electron ionizes a molecule, freeing a second; both repeat — exponential cascade N = e^(α·d), with α the first Townsend ionization coefficient (α/p = A·exp(−B·p/E), gas-specific...
established VIC
Under computer control, the Voltage Intensifier Circuit is energised by a normal 12V car battery to generate high voltage pulses at very low current (<1 milliamp), with the voltage responsive to the t...
established VIC
Six Voltage Intensifier Circuit bobbins, manufactured in the UK at Stan Meyer's request, arrived and were confirmed to be of the necessary quality, indicating the VIC bobbin design could be replicated...
established VIC
Per Appendix B Note 1, Choke-Coil (62, Fig 7-1) magnetic field (FL2) during pulse on-time impedes electron flow (since electron mass is electromagnetic and interacts with magnetic field strength), cau...
established VIC
In Voltage Intensifier Circuit Diagram (AA), a gated variable amplitude pulse train (49a...49n) passes through a blocking diode into Resonant Charging Choke (56, primary) and Resonant Charging Choke (...
established VIC
Pulse-voltage repetition rate sets up a step-up electrical charging effect since the Resonant Cavity functions as a Capacitor (ER) due to the dielectric value of water (78.542), which becomes an integ...
established VIC
The paired coil wires' opposite voltage potentials (positive electrical attraction force B+ = negative electrical attraction force B-, called Electrical Stress SS'=RR' as to (160) of Figure 3-26) are...
established VIC
Beyond amp-restricting characteristics, the paired bifilar-wrapped spiral coils cause voltage level enhancement beyond applied voltage input because the distributed capacitance (C1a...C1n = C2a...C2n)...
established VIC confidence 0.80
Other amp restricting circuits are applicable, such as applying a variable (0-5) volts unipolar pulse-frequency across the armature field-winding of a de-regulated alternator functioning as a pulse-vo...
established VIC
Connecting the Amp Inhibiting Circuit (Figure 8XA) to an external pulsing voltage source such as a step-up transformer forms the Voltage Intensifier Circuit (VIC, Figure 8XA1), as illustrated in the V...
established VIC
The length and diameter size of the copper-wire spiral-wrapped coils (56/62 of Figure 8XA), paired together and electrically energized in conjunction with the applied voltage pulse-frequency, determin...
established VIC
The high pulse-voltage energized Resonant Charging Choke (56) of Figure 7-1/8XA creates an electromagnetic coupling field (Rp1) that crosses over and passes through the electrically ground-connected R...
established VIC
The Amp Inhibiting Circuit (Figure 8XA) is composed of two copper wires bifilar-wound (wrapped) about a magnetic induction core, allowing amp restriction (minimizing current leakage) while encouraging...
established VIC confidence 0.80
The Voltage Intensifier Circuit (VXA) prevents electron replacement on the polarized gas atoms, and the water molecule is exposed to the same voltage stimulation process.
established VIC confidence 0.80
Increasing voltage intensity (voltage potential via amp restriction) removes additional electrons from gas atoms at a given electron light frequency injection (nuclei light absorption), aiding electro...
established VIC confidence 0.80
The Electrostatic Generator (6), referred to as Voltage Intensifier Circuit (9XA), applies opposite voltage potential to the screen-grids (4/5) during the Gas Filtering Process to separate positive an...
established VIC
Blocking diode (58) prevents electrical shorting from occurring across pickup coil (56) during pulsing operations.
established VIC
Voltage potential (57) gates ON unidirectional diode (58), allowing the potential to pass through in-line charging Choke Coil (59) to Excitor Plate (61), forming positive voltage field (62); the choke...
established VIC
Pickup coil (56) is composed of resistive wire, restricting amp flow within the voltage intensifier circuit (60), per WFC Tech Brief Section 4 (Voltage Attenuation Circuit Design Specs).
established VIC confidence 0.80
Laser or photon energy (I) of a predetermined wavelength and pulse-intensity is exposed to and absorbed by the gas ions to help reach gas ionization, deflecting electrons to a higher orbital state; pu...
established VIC
The Magnetic Spin Generator produces A.C. electrical output when the pickup coil-array is series-wrapped Right-Hand to Left-Hand, and D.C. output when wrapped in the same direction; orientation coils...
established VIC
The permanently magnetized particles of gas prevent electromagnetic coupling between the orientation coils (12/13) and the pickup coils (2a...2n); instead, power input rotates/spins the gas particles...
established VIC
When the orientation coils (12/13) are de-energized, the permanently magnetized particles (16a...16n) rotate another 90 degrees, reforming field (4) while field (3) collapses; the collapsing field (3)...
established VIC
When the variable gate circuit (EE) energizes both orientation coils (12/13) simultaneously, equal-magnitude fields (5/6) in North-South relation form across the air gap, terminating field (4) as the...
established VIC
To permanently magnetize the gas particles (16) inside the tube (1), an electrical potential is applied across the pickup coils (2a...2n), forming electromagnetic field (4) that jumps the air gap (7);...
established VIC
The Dual Pulsing Gate Circuit uses variable gate circuit (EE), electrically connected to both orientation coils (12/13), to apply a voltage pulse of given duration to both coils simultaneously (Figure...
established VIC
In the rotary alternative (Fig 11A), variable amplitude pulsing circuit (21) energizes armature coils (22) to produce pulsating electromagnetic fields (23) rotated through pickup coils (24), generatin...
established VIC
System setup requires filling the water fuel cell, adjusting excitor plate distance/volume, connecting to the VIC, then tuning to the resonant characteristic of the total system by adjusting the pulse...
established VIC
Modulator inductor coils (9 and 12), made of resistive wire, act as DC current limiters during initial fuel cell charging; the low-Q resonant charging circuit of the fuel cell (10, 11) in series with...
established VIC
Terminal resistor (12), affixed on the ground side of the excitor array between bypass coil (9) and ground terminal (13), is composed of resistive wire wound in the same coil configuration as bypass c...
established VIC
The high-frequency voltage bypass coil (9), wound of resistive wire, duplicates the incoming voltage pulse train from the secondary coil (8) via inductive coupling: the pulse creates an oscillating ma...
established VIC
In the Voltage Intensifier Circuit transformer, the primary coil is copper wire and the secondary coil is resistive wire, both insulated to prevent shorting; the two coils are joined on the ground sid...
established VIC
Optocoupler (4), triggered by variable gate circuit (5), gates the pulse voltage frequency waveform on/off; the gated pulse train on-time (16) vs off-time (17) is adjustable from 1% to 100% duty cycle...
established VIC
Optocoupler (3), triggered by pulse frequency generator (2), attenuates power supply voltage (1) into a pulse voltage waveform (Fig 9A); varying the pulse generator's triggering rate from 1Hz to 1MHz...
established VIC
The first-stage variable power supply is any conventional AC-to-DC or DC (non-regulated) supply providing an adjustable output voltage range from less than one volt to 110 volts and up, used as the fi...
established VIC
Resonant Charging Choke (47), placed between the negative voltage zone (44) and electrical ground (48), helps maintain capacitance value (voltage level) within the Resonant Cavity during voltage pulsi...
established VIC
Distilled water is an insulator to amp flow; natural water with less than 20ppm of contaminates maintains a high dielectric constant, and the VIC's component arrangement retards or prevents amp flow.
established VIC
Capacitance formed between conductor plates 44/45 with natural water as the conducting medium is relatively high, and this capacitance opposes any change in circuit voltage, delaying voltage change un...
established VIC
Stainless Steel Material T304 forming voltage zone (45) does not chemically interact with liberated hydrogen, oxygen, and ambient air gases in natural water when exposed to a voltage potential during...
established VIC
High voltage output from Resonant Charging Choke (43) forms a Positive Electrical Voltage Pulse Potential across voltage surface area (45), which is immersed in natural water, per step-charging graph...
established VIC
Resonant Charging Choke (43) is a Modulator Inductor that sets up an oscillation at a given charging frequency (voltage pulsing rate) with the effective capacitance of a pulse-forming network to charg...
established VIC
Blocking Diode (14) conducts current in only one direction, preventing electron flow toward the Secondary Pickup Winding (42) during Positive Voltage Potential formation.
established VIC
The resistive wire-coil Secondary Pickup Winding (42) allows a voltage potential to form via electromagnetic induction, while its Ohm value acts as a resistor opposing electron flow from circuit elect...
established VIC
The circuit's purpose is to form opposite electrical voltage zones while restricting amp flow during the Electrical Polarization Process, which splits the water molecule by voltage stimulation rather...
established VIC
A Resonant Charging Choke (47) connected from the negative voltage zone (44) to electrical ground (48) completes the Voltage Intensifier Circuit 9XA per schematic 20YA.
established VIC
The voltage zone surface areas (44/45) of the Resonant Cavity Assembly (Figure 12) form the capacitance value of the assembly, with natural water inside the cavity providing the dielectric between the...
established VIC
The Voltage Intensifier Circuit 9XA electronic interfacing circuit consists of a Secondary Pickup Winding (42, resistive wire coil), Blocking Diode (14), Resonant Charging Choke (43, resistive wire co...
established VIC
In the Dual Voltage Resonant 'Q' scheme, a Low Amplitude Pulse Voltage Frequency (54) is injected between the Pulse Voltage Frequency (53) to keep an electrical charge on the water molecule during Res...
established VIC
By varying applied voltage amplitude in direct relationship to a variable pulse voltage frequency, the Resonant Cavity Structure can take different shapes to maximize voltage stimulation of the water...
established VIC
The ability of an inductor and a capacitor in a series-resonant circuit delivers a voltage several times greater than the input voltage.
established VIC
Resonant Action occurs when the Voltage Intensifier Circuit (9XA as to 20YA) sets up a circuit condition whereby the inductive reactance components (43/45) and capacitive reactance components (44/47),...
established VIC
The resistive value of the wire-coil (47) prevents amp flow while performing in like manner as a Resonant Charging Choke.
established VIC
Another Resonant Charging Choke, resistor component (47), is placed between the negative voltage zone (44) and circuit electrical ground (48) to help maintain the resistance value (voltage level) with...
established VIC
Capacitance is formed between conductor plates 44/45 (voltage zones) since the dielectric value (insulating medium) of natural water is relatively high, opposing changes in circuit voltage until store...
established VIC
Stainless Steel Material T304 forming voltage zone (45) does NOT chemically interact with liberated hydrogen, oxygen, and ambient air gases in natural water when exposed to a voltage potential during...
established VIC
The high voltage output from the Resonant Charging Choke (43) forms a Positive Electrical Voltage Pulse Potential (voltage zone) across surface area (45) immersed in natural water, per the step-chargi...
established VIC
The resistive value of the Charging Choke (43) acts as a resistor, further preventing amp flow in the circuit.
established VIC
The Resonant Charging Choke (43) is a Modulator Inductor which sets up an oscillation at a given charging frequency (voltage pulsing rate) with the effective capacitance of a pulse-forming network in...
established VIC confidence 0.80
The Resonant Charging Choke is identified as component (43), a resistive wire coil, within the Electronic Interfacing Circuit of the Voltage Intensifier Circuit.
established VIC
Blocking Diode (14) conducts electricity in one direction only (the direction of the schematic arrow), preventing electron flow or movement toward the Secondary Pickup Winding (42) during Positive Vol...
established VIC
Since electrons are negatively electrically charged, electron (amp) flow always moves toward positive electrical potential when allowed to do so.
established VIC
The Secondary Pickup Winding (42) is a resistive wire-coil that allows a voltage potential to form across it via electromagnetic induction, while the resistive (Ohm) value of the coil wire acts as a r...
established VIC
The purpose of the VIC circuit operational parameters is to form opposite Electrical Voltage Zones while restricting amp flow during the Electrical Polarization Process, which splits the water molecul...
established VIC
The Resonant Charging Choke (43), connected to electrical ground, forms and completes the Voltage Intensifier Circuit 9XA as referenced in schematic 20YA.
established VIC
The Resonant Cavity Assembly (4) has an inner surface (45) forming a Positive Electrical Voltage Zone and an outer surface (44) forming a Negative Voltage Zone. Natural water inside the cavity provide...
established VIC
The voltage intensifier circuit of Figures 9, 9XA, 9XF, and 9XG are functionally the same as Figure 20C, the toroidal voltage intensifier circuit of Figure 20YG, and the rotary voltage intensifier cir...
established VIC
Once resonant-action is established and pulsing circuits are adjusted for minimum amp flow, voltage amplitude controls are then adjusted to vary gas production and trigger gas ionization via particle...
established VIC
To start compounding-action (resonant action), voltage pulses are attenuated while voltage amplitude is increased.
established VIC
Voltage pulses, attenuated up to and beyond 5,000 volts, are used to cause liberated gas atoms to reach an ionization state.
established VIC
A variable pulsing circuit is set up that is capable of tuning-in resonant action regardless of the shape and dimensional size of the resonant cavity (44).
established VIC
Pulse-train (53) and pulse-train (54) can have different pulse voltage frequencies and voltage amplitude adjustments, each performing a different function: pulse-train (53) regulates gas production on...
established VIC
Variable gate circuit (55) of Figure 20D is retrofitted to the dual-pulsing circuit of Figure 20C to extend gas production beyond the limits of a single resonant cavity, minimizing power loading while...
established VIC
Once the gated pulse-train (51) is set to maximize gas production, the gated duty-cycle pulse (52) is varied from one duty-pulse per second (52a) to one hundred duty-pulses per second (52n) to help re...
established VIC
Waveforms (d)(e) and (f)(g) combine into a pulse-duty (52) that is varied from one duty-pulse to one hundred duty-pulses (forming pulse-train 51) via gate circuit (32), representing the tenth and elev...
established VIC
Variable gate circuit (32) is a two-state switch linked to opto-coupler (36) and opto-coupler (39). When near ground/low state, opto-coupler (36) triggers to form pulse waveform (d)-(e); when gate cir...
established VIC
A dual-pulsing circuit (components 33, 34, 38, 39, 40) is integrated with the Voltage Intensifier Circuit (Figure 9) as shown in Figure 20C, to enhance hydrogen gas production beyond simple voltage at...
established VIC
Ohm's Law for the LED circuit in a parallel array gives It, the total forward current through the LED Cluster-Array, based on VCC, the volts applied, typically 5 volts.
established VIC
Laser or light intensity is linear with respect to the forward current through the LEDs, where Iled is the specified forward current, typically 20mA per diode, and Vled is the LED voltage drop, typica...
established VIC
Light-emitting diodes arranged in a Cluster-Array provide and emit a narrow band of visible light energy, as illustrated in Figure 1-6 (Figure 20XX).
established VIC
Laser energy (v), shown in Figure 1-1, is injected into or superimposed onto the Gas Destabilization Process to help promote the Electron Extraction Process, since absorbed light (electromagnetic) ene...
established VIC confidence 0.80
During the pulse-voltage application across the Excitor-Array, electron flow within the Voltage Intensifier Circuit is inhibited or prevented, enabling the ionization effect on the gas atom rather tha...
established VIC
Since pickup coil (n) is also composed of resistive wire-coil (R4), the total circuit resistance of the Voltage Intensifier Circuit includes this resistance value.
established VIC
Inductor (y) in relationship to inductor (c) electrically balances the opposite voltage electrical potential across voltage zones (E3) and (E4).
established VIC
The moveable wiper arm on inductor (y) fine-tunes 'Resonant Action' during pulsing operations of the Voltage Intensifier Circuit.
established VIC
Variable inductor-coil (y), similar to inductor (c) but connected to the opposite polarity voltage zone (E4), further inhibits electron movement or deflection within the Voltage Intensifier Circuit.
established VIC
Inductor (c) is composed of resistive wire (R7) which further restricts D.C. current flow beyond the inductance reactance (XL).
established VIC
Voltage intensity or level across the Excitor-Array (ER of t) can exceed 20,000 volts due to circuit (AA) interaction, and is directly related to the variable amplitude of the input pulse-train (h).
established VIC
Once the voltage-pulse is terminated or shut off, voltage potential returns to a ground-state or near ground-state, restarting the voltage deflection process.
established VIC
During resonant interaction, the incoming unipolar pulse-train (h) of Figure 1-1, as related to Figure 9B, produces a step-charging voltage-effect across the Excitor-Array (ER of t).
established VIC
At frequencies close to resonance, the voltage across the individual inductor or capacitor is higher than the applied voltage (h). At exact resonant frequency, the voltage across both the inductor and...
established VIC
For the series LC circuit, total voltage Vt equals current I multiplied by impedance Z (Vt = IZ), applying Ohm's Law to the resonant circuit.
established VIC
The capacitive reactance Xc in the series LC circuit is calculated as Xc = 1 / (2π·F·C), where F is frequency and C is capacitance.
established VIC
For an inductor and capacitor in series, the total impedance Zseries is given by Zseries = (Xc − Xl), where Xc is the capacitive reactance and Xl is the inductive reactance.
established VIC
Blocking Diode (f) prevents electrical shorting to secondary coil (n) during pulse-off time, since the diode conducts electrical energy only in the direction of the schematic arrow.
established VIC
Isolated electrical ground (w) prevents electron flow from the input circuit ground into the pulsing transformer's secondary side.
established VIC
Voltage amplitude or voltage potential is increased when the secondary coil (n) is wrapped with more turns of wire.
established VIC
The pulsing transformer (m) steps up voltage amplitude or voltage potential during pulsing operations, with the primary coil electrically isolated from the secondary coil to form the Voltage Intensifi...
established VIC confidence 0.80
A second, separately tuned Resonant Charging Choke (y) is specified as resistive wire-coil R6, distinct from the R7 charging choke (c).
established VIC confidence 0.80
The Secondary Pickup-Coil (n) is specified as a resistive wire-coil component designated R4.
established VIC confidence 0.80
The Resonant Charging Choke (c) is identified as a resistive coil-wire component designated R7 in the circuit.
established VIC
A 100 amp-hr battery divided by the 3.3 amp/hr current consumption of the VIC circuit gives 30.3 hours of battery life without recharging.
established VIC
40 watts divided by 12 volts battery equals a 3.3 amp/hr current draw capacity for the Voltage Intensifier Circuit.
established VIC
The Voltage Intensifier Circuit applies 40,000 volts at 1 milliamp, equaling 40 watts of applied electrical power.
established VIC
Voltage Intensifier Circuit (A3) is interlocked with the Safety Control Circuit (D) through the Electronic Control Unit (B).
established VIC
Engine RPM is controlled by way of voltage deflection through a patented electronic circuit called the Voltage Intensifier Circuit, which regulates hydrogen gas flow-rate to the engine.
established VIC
The Electronic Control Unit (B) is electrically and mechanically linked to the Gas-Pedal to form a Gas Acceleration Control Unit (F) that electronically regulates and varies hydrogen gas flow-rate to...
established VIC
Both the VIC Dual Single-Coil Assembly and the VIC Bifilar-Wrap Coil Assembly function similarly in producing voltage enhancement without incurring amp influxing (current increase).
established VIC
The resultant voltage enhancement (voltage amplitude) produced by the VIC can exceed 40 kilovolts, instantly converting water droplets into thermal explosive energy (referred to as 'gtnt').
established VIC confidence 0.80
Water's dielectric value provides resistance to amp flow, allowing it to function as an integral capacitive element (the Resonant Cavity) within the VIC Circuit.
established VIC
The Pulse-Voltage repetition rate sets up the step-up electrical charging effect because the Resonant Cavity functions as a capacitor due to the dielectric value (resistance to amp flow) of water, whi...
established VIC
The paired coil-wires' opposite voltage potentials (positive electrical attraction force B+ equaling negative electrical force B-), called 'Electrical Stress' (SS' = RR'), are always equal in electric...
established VIC
The distributed capacitance and distributed inductance of the bifilar-wrapped coils encourages a compounding effect, increasing electromagnetic field strength (mutual induction) during each pulsing cy...
established VIC
The spiral-wrapped coils paired together in the VIC Bifilar-Wrap Coil Assembly cause voltage level enhancement beyond the applied voltage input, due to distributed capacitance and distributed inductan...
established VIC confidence 0.80
The sequential switching of shunt-coils and choke coils establishes a Voltage Level Logic Function (260) that is electronically transferred in sequential order (260a-260n) by the Laser Acceleration Co...
established VIC
In an alternate form, the Core-Slug (73) is replaced by a series of Choke Coils (77a-77n) arranged to increase Voltage Pulse Amplitude digitally by sequentially switching Choke Coils on/off, applying...
established VIC
To lower Voltage Intensity back to Secondary Voltage Level (71), an inductance core-slug (73) made of magnetic core material advances via solenoid control (74) through the coil-wrap (250), switching o...
established VIC
Energy levels of the Hydrogen Fracturing Process can be increased by switching on additional Booster Coils (61a...61n) in sequential order, raising voltage intensity to a higher magnitude of Electrica...
established VIC
This induced voltage phenomenon prevents the resonant pulse frequency (58) from being impaired or altered while being electrically transmitted to the Resonant Cavity (180) of Figure (14) via electrica...
established VIC
The induced external electromagnetic field (63/64) across the Resonant coil-Tap (67) increases voltage intensity further rather than diminishing peak voltage potential from the resistive valve of the...
established VIC
The resistive valve of the stainless steel wire-coil (56/57) combined with its inductance-generated electromagnetic field (62) of Figure (19) opposes electron movement: the dielectric valve of the wir...
established VIC
Resonant Charging Chokes (56/57) are formed using Stainless Steel Electro-Inductance wire-material (430F / T304 or equivalent), which when electrically pulsed transmits voltage intensity while restric...
established VIC
Sequential Switch Circuit (59) switches Booster Pickup Coils (61a-61n) in series with the Secondary Coil (53) output to elevate voltage intensity across Resonant Charging Chokes (56/57).
established VIC
The resultant gated Resonant Pulse-train voltage amplitude is attenuated by the Sequential Voltage Amplitude Control Circuit (59) once the step-up Secondary Coil (53) produces a higher voltage level t...
established VIC
Pulse on-time (T1), held at a predetermined constant voltage level (VL), is adjusted to maximize transference of electromagnetic energy to the Secondary Coil (53) during pulsing operations.
established VIC
The pulse-train (210a-210n) is adjusted so pulse off-time (T2) synchronizes with the collapsing and re-formation of the electromagnetic field coupling across the pulsing transformer (52/53), producing...
established VIC
The water forms a capacitor (E7/E8) in series with Resonant Charging Chokes (56/57) placed on opposite sides of the Resonant Cavity Zone (35), together forming the Resonant Pulsing Circuit (110) of Fi...
established VIC
The Voltage Intensifier Circuit (220) of Figure (18) allows Electrical-Stress variation (SS'=RR'/TT'=UU') because it inhibits electron-flow (amp restriction) into the voltage triggering process (210)...
established VIC
A 100 amp/hr battery divided by the 3.3 amp/hr current consumption of the VIC gives approximately 30.3 hours of battery life before recharging is needed.
established VIC
The 40 watts of applied electrical power divided by the 12 volt battery supply yields a current draw capacity of 3.3 amp/hr.
established VIC
The Voltage Intensifier Circuit applies 40,000 volts at 1 milliamp, equating to 40 watts of applied electrical power.
established VIC
For performance reliability and safety, ionized air gases and liquid water do not become energy activated (volatile) until the water-fuel mixture (48) reaches the Voltage Igniter Stage (180).
established VIC
Water droplets exposed to opposing-polarity high intensity voltage fields undergo Electrical Polarization Process (160), separating hydrogen atoms (77a/77b) and oxygen atom (76) and causing electron e...
established VIC
The Voltage Igniter Stage (180) working with the Voltage Intensifier Circuit (110) and Electron Extraction Circuit (120) performs functions simultaneously to initiate and trigger thermal explosive ene...
established VIC
To lower energy-flame temperature, the amount of non-combustible gas is increased or fluid flow rate is reduced uniformly while lowering pulse voltage amplitude (Vo).
established VIC
To elevate energy-flame temperature, fluid-displacement of water and ionized air is increased while non-combustible gas volume flow rate is maintained or reduced, during an increase of applied voltage...
established VIC
Energy-Flame temperature is regulated by controlling the volume flow-rate of fluid mediums (water, non-combustible gas, ionized air) in direct relationship to applied voltage intensity (33/36).
established VIC
Exposure to the high intensity voltage fields performs the Electrical Polarization Process (160) undergoing Dielectric Resonance (240), which sets up and triggers the Hydrogen Fracturing Process (390)...
established VIC
The Water-Fuel mixture (48) enters Voltage Igniter Stage (180) and is exposed to high intensity voltage fields (33/36), typically 2,000 volts or above at 10 kHz or above, of opposite electrical polari...
established VIC
WFC memo 426, titled 'VIC Matrix Circuit,' defines the Voltage Intensifier Circuit configuration referenced for applying pulsating electrical stress to atoms as shown in Figure 5-8, item 550.
established VIC
The WFC Voltage Intensifier Circuit, as defined in WFC memo 426 'VIC Matrix Circuit,' applies a high pulsating 'Electrical stress' across an unstable radioactive atom via opposite voltage potential (i...
established VIC
The Voltage Intensifier Circuit (165) directly applies alternate/opposite (166/167) electrical voltage pulses, with amp restriction, in a sequential manner across voltage plates E5/E6 to activate the...
established VIC
To keep applied voltage amplitude constant while promoting Resonant Action, the incoming pulse train can be varied independent of voltage amplitude to attenuate voltage intensity and affect gas produc...
established VIC
To further prevent voltage fluctuation during resonant action, the Phase Lock Loop technique of the Pulse Indicator circuit (110) is utilized during pulsing operations.
established VIC
Attenuating voltage amplitude (Vo–Vn) together with pulse-width allows the Voltage Intensifier Circuit to tune-in and match the resonant characteristics/resonant frequency of the water bath, since the...
established VIC confidence 0.80
The pulse voltage potential (65) is applied across the Excitor plates while electron flow within the voltage intensifier circuit (190) is inhibited and prevented, a condition necessary for the water d...
established VIC
The step-charging voltage-wave (65) increases in amplitude from several millivolts to several hundred volts during each pulse train (65a...65n), causing the water molecule's charged atoms (76/77) to e...
established VIC
The variable pulse frequency generator (70) varies pulse frequency (63) at a 50% duty cycle pulse, while the gated pulse frequency generator (80) varies and adjusts pulse width (54a-54n).
established VIC
Analog voltage signal (32a-32n) allows the pulse train (51a-51n) voltage amplitude to vary from one up to twelve volts (from battery supply 28) by attenuating the Laser Accelerator circuit (10) via th...
established VIC
The resultant interfacing voltage circuit (190) exposes the water molecule (210) to a pulsating high intensity voltage field (65a-65n) of opposite polarity (66/67) while restricting amp flow within ci...
established VIC
The pulsing core (53) aids amp restriction while the Voltage Intensifier Circuit (190) is tuned—by adjusting the pulse train's pulse-frequency (63) via the pulse frequency generator (70)—to match the...
established VIC
Amp leakage (electron coupling to water) to the water bath (68) is prevented by encapsulating the resonant cavity (57) in delrin material (72), an electrical insulator to high voltage that remains res...
established VIC
Amp restriction beyond resonant action occurs when unipolar magnetic field coupling (71) is allowed to simultaneously drop across both resonant charging chokes (56/62) during pulsing operations, since...
established VIC
Variable inductor-coil (62), similar to inductor (56) but connected to the opposite polarity voltage zone (67), further inhibits electron movement within the VIC; a movable wiper arm (73) fine-tunes t...
established VIC
Inductor (56) is composed of resistive wire to further restrict D.C. current flow beyond normal inductance reaction (Xl); pickup coil (52) is likewise made of resistive wire, contributing to total cir...
established VIC
Voltage intensity or level across the excitor array (57) can exceed 20,000 volts due to circuit (60) interaction, directly related to the variable amplitude input of the pulse train (64a-64n).
established VIC
At frequencies close to resonance, the voltage across the individual LC components (inductor 56, capacitor 57) is higher than the applied voltage (49); at exact resonant frequency the theoretical volt...
established VIC
The inductor (56) and capacitor (57) of LC circuit (180) are tuned to resonate at a given frequency; the resonant frequency (63) can be raised or lowered by changing the inductance (56) and/or capacit...
established VIC
Water becomes part of the Voltage Intensifier Circuit functioning as a resistance between electrical ground (67) and pulse-frequency positive potential (66), helping to prevent electron flow within th...
established VIC
Resonant charging choke (56) in series with the Excitor-Array (66/67) forms an inductor-capacitor circuit (180); the Excitor-Array acts as a capacitor because natural water (68) between the opposing e...
established VIC
Switching diode (55) prevents electrical shorting to the secondary coil (52) during pulse off-time by conducting only in one direction, and simultaneously acts as an electronic switch that opens the c...
established VIC
The pulsing transformer (primary coil 26 / secondary coil 52) steps up voltage amplitude during pulsing operations; primary and secondary coils have no direct electrical connection (electrically isola...
established VIC
Negative electrical ground (61) of the Voltage Intensifier Circuit (60) is electrically isolated from the primary electrical ground (48), preventing electron flow from the input circuit ground into th...
established VIC
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...
established VIC
The only electrical connection point is a voltage cross-over from the regulated power supply (150, Figure 3-6) to the battery supply (28), as illustrated in Figure 3-6.
established VIC
Although the primary coil pulse waveform (49) exactly duplicates pulse train (47), the two pulse trains are electrically isolated from each other despite the correspondence.
established VIC
The resultant pulse waveform (49a...49n) superimposed onto primary coil (26) in Figure 3-18 is an exact duplicate of the proportional pulse train (47a...47n) driving the cell driver circuit.
established VIC
The gated pulse signal (48) fed into the cell driver circuit (90) performs a switching function, turning electric ground 'off' and 'on' as applied to the opposite side (48) of primary coil (26), shown...
established VIC
Conversely, opposite pulse shaping (narrower pulse train, wider pulse off-time) occurs when circuit (80) of Figure (3-5) is calibrated in reverse order.
established VIC
During calibration, pulse train (44a...44n) becomes widened while pulse off-time width (43) becomes smaller, simultaneously.
established VIC
The newly formed gated duty pulse (45) is proportional to the physical change in pulse train (44a...44n) when circuit (80) is adjusted for calibration purposes.
established VIC
Together pulse train (44a...44n) and pulse off-time (43) form the gated pulse duty cycle (45).
established VIC
Gated Pulse Circuit (80) of Figure (3-5) switches 'off' and 'on' sections of the incoming clock signal (42) to form gated pulse (45), which is duplicated in succession to produce gated pulse train (46...
established VIC
Circuit (70) produces another independent and separate clock signal (41a...41n) which is electrically transmitted to and becomes the incoming clock signal (42) for the Gated Pulse Frequency Generator...
established VIC
Increasing the number of duty pulses (39a...39n) up to a pulse frequency range of 10kHz or above forms clock signal (21) of Figure (3-5), which performs the scanning function of the Acceleration Contr...
established VIC
Pulse on-time (37) and pulse off-time (38) are equally displaced to form duty pulse (39), which is duplicated in succession to produce pulse train (41) shown in Figure (3-16).
established VIC
Circuit (70) of Figure (3-5) produces several clock pulses simultaneously, each with a different pulse-frequency, but all maintaining a 50% duty cycle pulse (39) configuration as shown in Figure (3-16...
established VIC confidence 0.80
In operation, Laser Accelerator Assembly (20) attenuates battery voltage potential (32a xxx 32n), which is electrically connected to the Voltage Intensifier Circuit (60).
established VIC
A variable voltage range (32a xxx 32n) from one (1) up to twelve (12) volts, representing the regulated battery voltage, is applied across primary coil (26) of the Voltage Intensifier Circuit (60).
established VIC
Regulator stage (27) of circuit (50) converts battery voltage potential (29) via electrical terminal (31) into analog voltage signal (32), which corresponds to but is electrically isolated (crossover...
established VIC
Regulatory stage (27) and stage (28) each work separately and independently of each other but are electronically linked/coupled together to produce a common analog signal (32) having a predetermined v...
established VIC
Circuit (50) performs two functions at once: it regulates car battery electrical voltage potential (32) applied to primary coil (26), and it regulates gas pressure of the Fuel Cell (120).
established VIC
Voltage levels (22a...22n) control the applied voltage potential across Resonant Cavity Assembly (120) of Figure (3-22) through voltage amplitude control circuit (50), which is electrically linked to...
established VIC
Analog circuit (40) also calibrates both engine idling speed (22ax) and maximum engine R.P.M. (22a...22n) by adjusting and maintaining predetermined low (24) and high voltage levels respectively.
established VIC
Analog circuit (40) provides a variable/controlled voltage output (23) in direct relationship to light gate (9) displacement, which in turn sets up and controls Resonant Action (160) of Figure (3-23)...
established VIC
The resultant varied voltage level (22a...22n) varies smoothly over a continuous range of voltage values rather than in discrete steps, as illustrated in the linear graph (23) of Figure (3-14).
established VIC
As pulse width (17ax) of signal (19) changes, analog voltage level output (23) changes correspondingly: widening pulse width toward stop-position (17a...17n) increases the analog signal (22) to higher...
established VIC
The analog signal (22) is a voltage level signal that varies continuously in both time and amplitude, producing a voltage level directly proportional to the physical change in the pulse train (100...1...
established VIC
Analog Voltage Generator Circuit (40) electronically detects, translates, and converts the digital signal (19) from the accelerated control circuit (30) into an analog voltage signal (22) that is cont...
established VIC
Incoming clock pulse (21a xxx 21n) of Figure (3-16) originating from Pulse Frequency Generator (70) sets up the scan-rate (toggling) by which signal input (15) is electronically scanned by circuit (30...
established VIC
A wider pulse width (17a xxx) increases (accelerates) engine R.P.M., whereas a smaller pulse width (17ax) reduces (de-accelerates) engine R.P.M. Cruising speed is achieved when pulse width remains con...
established VIC
Circuit (30) reproduces the variable controlled pulse-shape (16) in a continuous repetitive manner (16a xxx 16n) of Figure (3-13) and electrically transmits the resultant pulse-train signal (19) to An...
established VIC
Circuit (30) continues to increase pulse width (17axxxx) as the monitored toggling-time (14a xxxx 12) increases when logic-point (12) moves farther away from start-position (9a) to stop-position (9n);...
established VIC
Toggling action at full-scale deflection (13a xxx 13n) occurs in the range of 10 kHz or above, allowing instant response to driver's acceleration demands.
established VIC
Circuit (30) electronically and automatically scans output signal-array (14a xxx 12 xx14n) until it locates and translates response-time (14a xxx 12) into a variable unipolar pulse (17/18). The sweepi...
established VIC
As signal output (15) is received by Acceleration Control Circuit (30) of Figure (3-5), circuit (30) converts the incoming time-response signal (14a xxx 12 xx14n) into a variable time-base unipolar pu...
established VIC
In some cases reverse signal-logic (12a xxx ... 13 ... xxx 12n) is applicable by using SDP 8601 Optoschmitt, which switches logic state from Quiescent state ('low' to 'high' logic state) when de-energ...
established VIC
Led Pickup Circuit (10) of Figure (3-9) operates up to 100 kHz range or above, giving electrical sensitivity of Opto-circuit (8) instantaneous response to driver's acceleration, de-acceleration, or cr...
established VIC
Longevity and reliability of component life is typically 100,000 hours since Led Pickup Circuit (10) utilizes no mechanical contacts to perform the sequential logic switch function.
established VIC
Once light-gate (9) blocks traveling light-beam (3) from reaching a matched Optoschmitt, the darkened Optoschmitt (11, non-energized) changes output state as irradiance drops to or below the release p...
established VIC
Light-gate (9) is inserted between matched infrared devices and moved linearly between optical circuits (8x, 8xx...); as it advances or blocks light beams it sequentially switches each Optoschmitt's l...
established VIC
The transmitted light source (3) turns on when a 5 volt electrical power source is applied to the LED (1) through dropping resistor (5) via voltage regulator (6) connected to the car electrical system...
established VIC
The linear derate of light intensity is approximately 1.25 mW per degree C above 25 degree C, measured at a spatial distance of 0.500 inches between the two infrared devices (1)(2).
established VIC
The peak wavelength transmitted from the infrared emitting diode (1) to the Optoschmitt receiver (2) is typically 935 nm, allowing the Optoschmitt clock frequency (rate of logic state change) to be 10...
established VIC
Laser Accelerator Circuit (10) uses a GaAs infrared emitting diode (1) to trigger a SDP8611 Optoschmitt light receiver (2) from quiescent state (output logic high, B+) to on-state, switching output to...
established VIC
The Voltage Intensifier Circuit (110, Figure 4-9) inhibits and prevents electron flow from entering into the gas ignition process (180), as further illustrated in Figure 4-8.
established VIC
Voltage Igniter Stage (180, Figure 4-5), together with Voltage Intensifier Circuit (110, Figure 4-9) and Extraction Circuit (10, Figure 4-10), performs several functions simultaneously to initiate and...
established VIC
A predetermined energy-flame temperature is established by adjusting fluid-medium (45/46/47) and applied voltage amplitude (V0) independently of each other to obtain the desired result.
established VIC
To lower energy-flame temperature, the amount of non-combustible gases (45a...) is increased or the fluid flow rates (45/46/47) are reduced uniformly while lowering pulse voltage amplitude (V0).
established VIC
To elevate energy-flame temperature, fluid-displacement (46/47) is increased while non-combustible gas (45) volume flow is maintained or reduced, together with an increase in applied pulse voltage amp...
established VIC
Energy-flame temperature is regulated by controlling the volume flow-rate of fluid mediums (47/45/46) in direct relationship to applied voltage intensity (33/36), per Figures 4-2 and 4-5.
established VIC
The electrical polarization and dielectric resonance also set up and trigger the Hydrogen Fracturing Process (390) of Figure 3-42 (as to Figure 3-6), controlled on demand via electrical-static spark i...
established VIC
In the Voltage Igniter Stage (180) of Figure 4-5, the water-fuel mixture is exposed to high intensity voltage fields (33/36) typically 2,000 volts or above at 10 kHz or above, of opposite electrical p...
established VIC
U.S. Patent #4,826,581, issued May 2, 1989, covers the Electrical Polarization Process.
established VIC
U.S. Patent #4,936,961, issued June 26, 1990, covers the Resonant Cavity Voltage Intensifier Circuit (VIC).
established VIC
The Voltage Intensifier Circuit brings on the 'Electrical Polarization Process' that switches off the covalent bond of the water molecule without consuming amps.
established VIC
By simply attenuating or varying voltage amplitude in direct relationship to voltage pulse-rate, Atomic Power-Yield can be determined under a controlled state.
established VIC
Absorbed Laser energy (Va, Vb, Vc) weakens the Electrical Bond between orbital electrons and the atomic nucleus; simultaneously, electrical attraction-force (qq'), stronger than normal due to lack of...
established VIC
Laser or light intensity is variable as to duty cycle on/off pulse-frequency from 1Hz to 65 Hz and above (Eq 17), where Le is light intensity in watts, T1 is current on-time, T2 is current off-time, a...
established VIC
Ohm's Law is applied for the LED circuit in a parallel array, where (It) is the forward current through the LED cluster-Array and Vcc is the applied voltage, typically 5 volts (Eq 16).
established VIC
Laser/light intensity is linear with respect to forward current through the LEDs. The specified forward current (I_led) is typically 20mA per diode, and the LED voltage drop (V_led) is typically 1.7 v...
established VIC
The absorbed Laser Energy (Electromagnetic Energy) causes many atoms to lose electrons while highly energizing the liberated combustible gas ions prior to and during thermal gas-ignition.
established VIC
Inductor (D) in relationship to inductor (C) electrically balances the opposite voltage electrical potential across voltage zones (E1) and (E2) within the Voltage Intensifier Circuit.
established VIC
The variable inductor-coil (D) has a movable wiper arm that allows fine tuning of the 'Resonant Action' during pulsing operations of the Voltage Intensifier Circuit.
established VIC
Variable inductor-coil (D), similar to inductor (C), is connected to the opposite polarity voltage zone (E2), which further inhibits electron movement or deflection within the Voltage Intensifier Circ...
established VIC
At frequency close to resonance, the voltage across individual components (inductor C, capacitor ER) is higher than the applied voltage H, and at resonant frequency the voltage VT across both inductor...
established VIC
The value of the Inductor (C), the value of the capacitor (ER), and the pulse-frequency of the applied voltage across the LC circuit together determine the impedance of the LC circuit (Eq 1, series im...
established VIC
The established resonant frequency of the LC circuit is independent of voltage amplitude, as illustrated in Figure 1-3 as to Figure 1-4.
established VIC
The resonant frequency can be raised or lowered by changing the inductance and/or capacitance values of the LC circuit.
established VIC
The Inductance (C) and Capacitance (ER) properties of the LC circuit are tuned to resonance at a certain frequency.
established VIC
The Inductor (C) becomes a Modulator Inductor, stepping up an oscillation at a given charging frequency along with the effective capacitance of a pulse-forming network to charge the voltage zones (E1/...
established VIC
The Resonant Charging Choke (C) in series with the Excitor-Array (E1/E2) forms an inductor-capacitor (LC) circuit, since the Excitor-Array (ER) acts as a capacitor during pulsing operations (Fig 1-2,...
established VIC
An isolated electrical ground (J) prevents electron flow from the input circuit ground, maintaining electrical isolation within the pulsing transformer/VIC assembly.
established VIC
Voltage amplitude or voltage potential is increased when the secondary coil (A) is wrapped with more turns of wire.
established VIC
The primary coil is electrically isolated from the secondary coil (no electrical connection between them) to form the Voltage Intensifier Circuit (AA), as shown in Figure 1-1.
established VIC
The pulsing transformer (A/G) steps up the voltage amplitude or voltage potential during pulsing operations within the Voltage Intensifier Circuit.
established VIC
Electrical steel core material (53) forms a close-loop magnetic induction pathway centrally through and around the VIC coil-assembly (530), as schematically illustrated at (190) of Figure 3-23 (Memo W...
established VIC
Resonant bobbin assembly (503), primary bobbin assembly (504), and secondary bobbin assembly (506) structurally combine to form the Voltage Intensifier Circuit (VIC) coil-assembly (530), shown in Figu...
established VIC
Secondary bobbin cavity (506) is placed on top of and in spatial relationship to primary coil cavity (504).
established VIC
Secondary pickup coil (52) in Figure 3-23 is composed of individual spiral wrapped coils (505a...505n), typically .002 Ga. magnet wire, electrically connected in sequential order to form bobbin cavity...
established VIC
Primary Coil (26), typically .030 Ga. film coated magnet wire, is longitudinally wrapped in space relationship on top of and layered bidirectionally (507a...507n) across the spiral-wrap choke coils (5...
established VIC
The individual spiral-wrap coils (501a...501n) are electrically connected in sequential order to form the resistive pickup coil (503).
established VIC
The .004 Ga. (or smaller) 430F/430FR wire is axially (spiralled) bifilar wound about core bobbin (502), forming individual spiral-wrap coils (501a...501n) of equal length running from inner to outer c...
established VIC
Resonant Choke Coils (56/62) shown in Figure 3-23 (Memo WFC 422 DA) are composed of 430F or 430FR inductance stainless steel wire, film coated for high dielectric value, typically .004 gauge or smalle...
established VIC confidence 0.80
The 'Voltage Intensity of Opposite Potential' (600) generated by the VIC coil-assembly performs work to trigger the Hydrogen Fracturing Process (520), as referenced against (100) of Figure 4-8.
established VIC
The design parameters of the VIC coil-structures (580) inherently determine 'Efficiency,' defined as minimizing amp leakage, which governs how the resulting Voltage Intensity of Opposite Potential (60...
established VIC
Activation Process (590) is achieved because amp flow is restricted from entering the Voltage Triggering Process (70) by way of the voltage intensifier coil-assembly (580).
established VIC
All activation points (E9a-d) perform their functions in sequential order within an instant of time, since the applied voltage level of intensity, typically about 20,000 input volts, can be extended o...
established VIC
At activation point E9a, water flow is exposed to the voltage wave-form to begin water-to-energy conversion; at E9b voltage intensity is sufficient to perform the Electrical Polarization Process; beyo...
established VIC
The parallel sides (E9/E10) of the conical cavity function as a 'voltage wave-guide' and also act as a voltage intensifier circuit as the applied gated pulse-frequency travels the cavity length toward...
established VIC
The outer conical surface (E9) and inner conical surface (E10) form an open-air conical cavity (570) with parallel (or in other cases non-linear) voltage-surfaces spaced typically .010 gap apart, with...
established VIC
A calibrated gated unipolar pulse train (Fig 3-20) is outputted from the resonant choke (56) and electrically transmitted to the positive outer conical surface (E9), while negative voltage potential i...
established VIC
The resonant pulse-frequency is determined by the dielectric value of natural water in direct relationship to the resonant cavity's geometrical configuration; water's dielectric value is stated as 78....
established VIC
The incoming gated pulse-train (Fig 3-17) is electronically tuned to adjust pulse off-time (T2) to compensate for the rise and fall of magnetic field coupling, establishing a predetermined resonant pu...
established VIC
The voltage intensifier circuit (VIC) coil-assembly (580, Fig 6-1) is electrically interfaced with the 'Taper Resonant Cavity' (590, Fig 6-2), as schematically shown in Fig 3-22 relative to pulse core...
established VIC
The Voltage Intensifier Circuit is pulsed sensitive (49a xxx 49n) to tune into the dielectric properties of an airborne gas molecule, activating Covalent Switch-Off phenomenon (550) by restricting amp...
established VIC
The WFC Exhaust Air Reclaimer uses opposite electrical attraction force (RR'-SS') from voltage potential (Va xxx Vn) to separate the atoms of the Nitric Oxide NO molecule by overcoming the Electrovale...
established VIC
WFC Exhaust Air Reclaimer (900) of Figure (9-1) is similar in construction to Voltage Intensifier Circuit (110) of Figure (4-9), and is used to comply with the EPA Clean Air Act by eliminating Nitric...
established VIC
The repetitive polarity switching causes 'Particle Oscillation' functioning as an 'Energy Generator' through 'Physical Stress' undergoing pulsating 'Electrical Stress' whenever pulse switching cycles...
established VIC
When the (B+/B+ - B-/B- / 1030B) switch function is activated, switch terminals (T1/T2-T3/T4) are closed; switch position (T1/T4-T3/T2) reverses voltage polarity once switch function (T1/T2-T3/T4) clo...
established VIC
The circuit performs Voltage Switchover Logic Functions (B+/B+ 1030B ↔ B-/B- 1030A) of Figure 11-7 during each and every sequential voltage pulsing cycle (T4A-T4B-T4A-T4B and so on).
established VIC
Electrical Attraction Forces (S-S'/R-R') and Repelling Forces (T-T'/W-W') can be applied simultaneously or in a time sequence as the Electrical Crossover Switch Circuit (1060) reverses voltage polarit...
established VIC
The Electrical Crossover Switching Circuit (1060) singularly places either a Positive Voltage Potential (1014) across Voltage Zones E18/E14 and/or a Negative Voltage Potential across Voltage Zones E17...
established VIC
To reduce the number of VIC Circuits to a single VIC Coil Assembly (1003) while enabling a Voltage Repelling Force (W-W' and/or T-T'), the Electrical Crossover Circuit (1060) is electrically placed be...
established VIC
Varying the gated pulse-width (T4A/T4B), voltage amplitude (Vn), and Switchover pulse frequency rate (Sopr) collectively determines the rate at which water temperature rises as it travels through the...
established VIC
The electrical conductivity of T304 stainless steel together with water's dielectric property (water insulating against amp flow) sets up electrical conduction zone (587), allowing the voltage pulse w...
established VIC
The constructed tubular-array of the Differential Voltage Wave-Guide is composed of T304 stainless steel material (or equivalent), chosen for being chemically inert to the voltage deflecting process (...
established VIC
The Differential Voltage Wave-Guide (1040) is constructed with a smaller tube placed inside a much larger tube, with space between them to allow water to pass through, similar in construction to the l...
established VIC
Pairing positive zone (E13/952) with negative zone (E16/956), and (E14/953) with (E15/954), each of identical longitudinal axis length, forms the 'Differential Voltage Wave-Guide' (1040), defined by a...
established VIC
A completely separate Voltage Intensifier VIC-Coil Assembly (1003) is periodically switched on by alternate voltage pulse waveform (T4B) once T4A terminates for a brief period (T3A), redirecting the b...
established VIC
Voltage intensity at zones (952/953) is directly determined by the number of turns of each coil (957/958) relative to the applied voltage amplitude of the incoming pulse waveform (...xxx Vn).
established VIC
The distributed capacitance (Cda...Cdn) of each coil experiencing inductance coupling (619) elevates the applied voltage level (Vn) to a higher amplitude, increasing voltage intensity needed to deflec...
established VIC
The simultaneous formation of positive voltage field (952) and negative voltage field (953) results from mutual electromagnetic inductance coupling between the two bifilar wrapped coils (957/56-958/62...
established VIC
Both primary coil (957) and secondary coil (958) forming the voltage intensifier circuit (990) are bifilar wrapped in equal length, causing both water molecules to be displaced at the same velocity si...
established VIC
Simultaneously, stationary negative voltage field (958) at plate (953) attracts the positive hydrogen atom of a separate water molecule via R-R' attraction, displacing it in linear movement at the sam...
established VIC
Incoming programmable gated pulse-frequency waveform (T4A) electrically energizes primary input coil (957), producing positive voltage field (952) across voltage zone (E13), which deflects the negativ...
established VIC
The VIC Switchover Circuit (1010) prevents amp influxing into and away from the periodically spaced negative voltage zones (E13-E14, E15-E16), while allowing opposite-polarity voltage potentials to de...
established VIC confidence 0.80
Continued flexing of liquid or gas atoms exposed to physical stress (item 954) by an external electrical attraction force (S-S'/R-R') is a more effective way to induce and propagate Particle Oscillati...
established VIC
Repetitive formation of pulse voltage fields (952a...952n - 953a...953n or 954a...954n - 956a...956n) continues the 'Voltage Energized Thermal Transference Effect' (Figure 11-5, also called the Atomic...
established VIC
The additive/surplus energy is emitted from the excited atoms as radiant thermal heat energy (item 165) when the flexed atoms return to stable atomic equilibrium once the applied electrical pulse-volt...
established VIC
Applied stationary voltage fields (952/E13–953/E14 or 954/E15–956/E16) alternately switch over periodically, superimposing electrical stress forces (S-S' and R-R') onto the water molecule atom's energ...
established VIC
The dual unipolar voltage pulse circuit (Figure 11-1) is used to deflect (physically move) the bipolar electrically charged water molecule (Figure 3-46) while it undergoes both physical and electrical...
established VIC
Applied Voltage Peak Potential (Vpp), Voltage Pulse Cycling, and Opposite Voltage Potential combine to form the Voltage Sync-Pulse, which together determine the energy-intensity of the coherent beam.
established VIC
When the Input Pulse Frequency terminates the Voltage-Sync Pulse during pulse off-time (T2), the deflected electron that had jumped to a higher energy state suddenly returns to its original lower (qui...
established VIC
The greater the electrical stress force per negative Voltage Gate-Pulse applied, the greater the amount of Flex-Density of electromagnetic radiant energy produced per cm3.
established VIC
Voltage Peak Potential (Vpp) determines how far the deflected orbital electron moves from the pivotal proton during the active state and is directly related to Flex-Density (Fd), the measure of energy...
established VIC
Applied unipolar Positive Voltage Pulse (B+) at ST-ST' attracts the negative charged electron while simultaneously applied unipolar Negative Voltage Pulse (B-) at RU-RU' attracts the positive charged...
established VIC
The Voltage Pulse Field (Vpf), formed by the leading and trailing edges of each Voltage Pulse, determines the duration that the Static Electrical Charging Effect is superimposed onto the hydrogen atom...
established VIC confidence 0.80
The Voltage-Sync Gate-Pulse (Vgp) produces opposite electrical attraction forces (B+/ST-ST' and B-/RU-RU', Fig 5-1) that are not consumed in an electronic circuit.
established VIC
Both Static and Dynamic Voltage Stimulation use Positive Electrical Voltage Potential (B+) and Negative Electrical Voltage Potential (B-) to form a synchronized, diametrically opposed Voltage Gate-Pul...
established VIC confidence 0.80
Dynamic Voltage Stimulation (Fig 8-1B) continues moving farther from the State of Equilibrium during each Voltage Pulsing Cycle, establishing a variable Dynamic Electrical Charging Effect.
established VIC confidence 0.80
In Static Voltage Stimulation (Fig 8-1A), Voltage Peak Potential (Vpp) remains constant during Voltage Pulse Formation, keeping the reforming Flex-Density Potential from moving far from the Static Sta...
established VIC
When the Voltage Intensifier Circuit (VIC Circuit, Fig 10-1) is electrically connected to Voltage Zones (66/E11–67/E12), it establishes the functional parameters of the Optical Thermal Lens (Fig 10-2)...
established VIC
The Amp Inhibiting Circuit (970, Figure 10-1) restricts/inhibits amp flow to a minimal level while elevating the Difference of Potential (electrical stress) to the highest possible level, since greate...
established VIC
In all cases, the bifilar coils (56/62 and SS56/62) are electromagnetically orientated in the same direction.
established VIC confidence 0.80
The mutual inductance coil-field (Rp1+Rp2) causes coil capacitance (Cda...Cdn) to help maintain and increase pulse voltage amplitude, while the resistive value (Rs2) of the SS Coil-Wire further resist...
established VIC
Magnet coil-wire length is generally longer than the Stainless Steel coil-wire length, and the magnet bifilar-coil (56/62) is placed on top of the Stainless Steel bifilar-coil (SS56/62) to maximize mu...
established VIC
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) restrict electron movement beyond ea...
established VIC
Coil Stages (56/62a...56/62n + SS56/62a...SS56/62n) added/stacked sequentially into a single overall coil-array assembly (990A/B, Figure 10-3) form the Amp Inhibiting Network (970, Figure 10-1), herei...
established VIC
The Stainless Steel bifilar Coil-Stage Assembly (SS56/62a...SS56/62n) is electrically placed between the Magnet Coil-Stage Assembly (56/62a...56/62n) and the Water Gap (Cp) to obtain the optimum Volta...
established VIC
Stainless Steel composite coil-wire (430F/FR) has both inductance and resistive properties, typically 0.0048 ohms per foot, which combined aids amp restriction beyond what copper self-inductance magne...
established VIC
As additional Dual Choke Coils (56/62 + SS56/62) are stacked into the coil-array forming the Voltage Intensifier Circuit (970, Figure 10-1), amp-surge is kept to a minimal level while Voltage Potentia...
established VIC
Increasing the number of Resonant Charging Choke Stages (56/62 + SS56/62) added in sequential order increases energy yield, since the Multi-Coil Magnet bifilar coils are serially connected to an equal...
established VIC
Resonant Charging Choke Stages (56/62a...56/62n + SS56/62a...SS56/62n) are electrically connected in sequential order and magnetically linked by an Inductance Coupling field, producing the opposite-po...
established VIC
The programmable pulse-frequency (49a...49n, Fig 10-1) input is adjusted to tune-in to the dielectric property of the Water Molecule, enabling the Amp Inhibiting Circuit's Electrical Polarization Proc...
established VIC
Blocking Diode (52, Fig 4-9/1-1) allows the unipolar pulse-wave to go more positive on each pulse cycle by preventing the Resonant Cavity (Cp) from discharging during pulse off-time (Fig 1-4, 60 of Fi...
established VIC
The resultant voltage enhancement (Voltage Amplitude) of the VIC can exceed 40 kilovolts, instantly converting water droplets into thermal explosive energy on demand (Fig 10-1).
established VIC
Pulse-Voltage repetition rate sets up a step-up charging effect (Fig 1-3) since the Resonant Cavity (Cp) functions as a Capacitor (ER) due to the dielectric value of the liquid (or gases) contained, w...
established VIC
The paired coil-wires' opposite voltage potentials (positive attraction force B+, negative attraction force B-), referred to as Electrical Stress (SS'-RR'), are always equal in electrical magnitude/in...
established VIC
Beyond amp restriction, the paired spiral-wrapped Resonant Charging Chokes (56/62) cause voltage level enhancement beyond applied voltage input, as the Distributed Capacitance (C1a...C1n, C2a...C2n) a...
established VIC
The VIC Bifilar Wrap Coil-Assembly (Fig 10-3B) and VIC Dual Coil Wrap-Assembly (Fig 10-3A) both utilize 'E', 'I', and 'U' inductance core configurations to concentrate Mutual Inductance Fields (Rp1/Rp...
established VIC
To reduce amp leakage further, the copper wire of both Resonant Charging Chokes (56/62) can be replaced with magnetically inductive stainless steel wire (430F/FR), which has a resistive value (Ohms) t...
established VIC
The length and diameter of the copper-wire spiral-wrapped coil pair (56/62, Fig 10-1), combined with the applied Voltage Pulse-Frequency, determines how much amp leakage occurs across the capacitor Ga...
established VIC
The mutual inductance field between paired chokes 56/62 prevents amp in-fluxing (discouraging electron arc-over) across the Dielectric Capacitor Gap (ER)(66/67) while Electrical Stress of opposite vol...
established VIC
The energized Resonant Charging Choke (56, Fig 7-1/10-1), driven by input voltage pulses (49a...49n), creates an electromagnetic coupling field (Rp1) via self-inductance (640, Fig 7-3B) that crosses t...
established VIC
The Amp Inhibiting Circuit (970, Fig 10-1; 690, Fig 7-8) is composed of two copper wires bifilar wound about a magnetic induction core, restricting amp (current) leakage while encouraging voltage pote...
established VIC
Pulse Off-time (T2, Figure 7-8, related to item 620 of Figure 7-1) is adjusted to compensate for the rise and fall of the magnetic coupling field (71), producing applied Unipolar Wave-forms (64a throu...
established VIC
Voltage Compressional Wave-form (35b) and Expanding Voltage Waveform (35c) increase the intensity of applied pulsating opposite electrical attraction force (SS'-RR'a through SS'-RR'n) further during e...
established VIC
The mode-of-operability of the VIC Coil Assembly (580, Figure 6-1) allows Voltage Potential (Vn) of opposite voltage polarity (66/SS' - 67/RR') to increase and be attenuated up to and beyond 20 kilovo...
established VIC confidence 0.80
The VIC circuit topology includes a Primary Coil (26) and a Secondary Coil (52), between which electrical power is transferred and maximized via the coil switching mechanism.
established VIC
Switching the member of Secondary Coil-Array (505a–505n) maximizes electrical power transfer from Primary Coil (26) to Secondary Coil (52) by keeping the Voltage Amplitude of the Pulse-train (49a–49n,...
established VIC
The Taper Resonant Voltage surfaces (E9/10) of Figure 6-2 act and perform as a 'Voltage Amplifier' when the Compressional Wave-form (B) of Figure 7-12 is intensified at Exit Port (32) of Figure 6-2.
established VIC
Voltage levels of variance (Va–Vn) are achieved by switching-in or switching-out members of the Secondary Coil-cavities (505a–505n), shown at 740 of Figure 7-13, in direct relationship to the Taper Re...
established VIC confidence 0.80
In practical operation, a minute amount of amp leakage is present due to Electronic Component Limitations, but it is negligible to the overall performance of the Hydrogen Fracturing Process when subje...
established VIC
Electron Bounce Phenomenon, Voltage Coefficient of Inductance (FL1/FL2), Voltage Coefficient of Capacitance (Cd1/Cd2), Voltage Coefficient of Resistance (Rs1/Rs2), and the Dielectric Coefficient of Wa...
established VIC
The Electron Bounce Phenomenon (EbP) sustains and maintains the induced voltage potential without 'electron discharge' through Choke Coil (62), while simultaneously inhibiting additional electrons fro...
established VIC
Magnetic field coupling passing through the Secondary Coil-winding (52) dislodges electrons from copper atoms in the copper wire, producing positive copper ions that create positive voltage potential...
established VIC
The resultant dynamic voltage potential of difference is balanced in equal electrical intensity of opposite polarity because the Voltage Coefficient of Inductance (FL1/FL2), Voltage Coefficient of Cap...
established VIC
The total inductance of the Choke Coils (FL1, FL2) is derived with L1 and L2 (choke coils 56 and 62) in series with Secondary Coil (52), both exposed to the same Voltage Transformer (26-53-52) magneti...
established VIC confidence 0.80
Magnetic flux from the closed-loop pulsing core (53) penetrates inductance coil-windings (52, 56, 62) during each pulse on-time, with the pulse-train tuned to the dielectric property of water (Re), ca...
established VIC
The Capacitance Charging Effect (628) prevents amperage from influxing away from the Water Gap (Cp), and together with both Choke-Coils (56/62) conducting positive/negative voltage potential during pu...
established VIC
The Electron Inhibiting Effect causes 'Electron Clustering' to produce a Negative Voltage Potential (B-) at one side of the Water Gap (Cp); this occurs via low electrical power input when Choke-Coil (...
established VIC confidence 0.80
Aiding Inductance Fields (FL1-FL4) produce an Inductance Charging Effect and a Resonant Voltage Effect that interact with the dielectric properties of water (Re) to cause and inhibit electron flow (IF...
established VIC
The VIC Coil Assembly (580), comprising Inductor Coils (26, 52, 56, 62), is constructed and rotated so all coils share the same electromagnetic polarity orientation (indicator mark 'e'), allowing thei...
established VIC
The total inductance of the Choke Coils (Lt cc, fields FL1-FL2) is derived from the individual inductances of choke coils (56) and (62), in series with the Secondary Coil (52) voltage potential, with...
established VIC
Total inductance (La) of the Primary Coil (26) and Secondary Coil (52) is calculated with their fields aiding via Coupling Inductance (Rp), using individual coil inductances (L1, L2) and mutual induct...
established VIC
The impedance ratio of the VIC transformer is determined from the sum of the magnetic field strength (FL4) of the primary coil (26) and the induced magnetic field (FL3) of the secondary pickup coil (5...
established VIC
Secondary Coil-Wrap (52) is formed from turns of wire in each bobbin cavity (505), with the bobbin cavities electrically connected in series arrangement (505a-505n), each adhering to equation (Eq 20),...
established VIC
The turns ratio of the VIC Transformer (26/52) is determined by an equation relating Np (primary turns on spool cavity 504) to Ns (secondary turns summed in series across bobbin cavities 505a-505n for...
established VIC
Magnetic Induction (71a-71n) is determined by the Inductance Permeability (μL) of the core material (53) together with VIC circuit geometry, which together enable step-up of Voltage Potential (Vo-Vn)...
established VIC
The Secondary Pickup Coil-winding (52) has more turns of wire than the Primary Coil-winding (26), producing step-up transformer action via magnetic flux lines induced by pulsing of the Primary Coil.
established VIC
The Inductance Core (53) is composed of 'Grain Oriented' Electrical Steel laminations that step up applied voltage when magnetic field coupling crosses over from the Primary Coil-winding (26) to the S...
established VIC confidence 0.80
Total VIC 'Circuit Resistance' to D.C. current flow is expressed and determined by combining Rl (secondary pickup coil resistance), Z2 (choke-coil L1 impedance), Z3 (choke-coil L2 impedance), and Re (...
established VIC
Rl, the resistive value of Secondary Pickup Coil 52 (Figure 7-8), is combined with the magnetic field strength of primary coupling field 71 in direct relationship to inductance field strength Rp, whic...
established VIC
Coil-wraps 56 and 62 (choke coils L1 and L2) are Bifilar wound together onto a single spool-bobbin, giving each choke-coil the same impedance value.
established VIC
The two VIC choke-coils L1 (coil 56) and L2 (coil 62) are wound from stainless steel (s/s) wire, each with a typical resistive value of 11.6 KΩ, determined by inductance field strength (FL1, FL2) when...
established VIC
Inductors (L1/L2) should always have larger Reactance than Capacitor (ER, Figure 7-2) in order to maximize amp restriction, enhancing 'Voltage Deflection' (SS'-617a...617n-RR') shown in Figure 7-4.
established VIC
Plate Inductance (Lc) is the Inductance Reactance of Inductor (L1) and Inductor (L2) in series with the Resonant Capacitor (140-170 of Figure 7-6, corresponding to 690 of Figure 7-8).
established VIC
Capacitance Reactance is determined by the insulation resistance (Rs+Re) and Inductance (L1/L2) interacting together during D.C. Pulsing.
established VIC confidence 0.80
(Eo), the Free-Space Permittivity of Water, is established by the VIC Circuit's ability to restrict amp flow; the ratio (e/Eo) is the Dielectric Constant of Water.
established VIC
The inductance formula uses N (number of turns), A (mean radius in inches), B (length of coil in inches), and C (depth of coil in inches), with L expressed in microhenries.
established VIC confidence 0.80
By optimizing distributed capacitance (Cda...Coo) and distributed inductance (Dla...Dln), the coil's Inductance Field Strength (FLa...FLn) is intensified so the coil functions as a voltage multiplier...
established VIC
Inductance (L, in microhenries) of a multi-layer coil of rectangular cross section is computed from turns (N), mean radius (A, inches), coil length (B, inches), and coil depth (C, inches). Optimizing...
established VIC confidence 0.80
The text identifies a Secondary Pickup Coil (523) with a Length parameter denoted (FL3a xxx FL3n) as one of the factors influencing thermal explosive energy-yield from water.
established VIC
Inductor (L1) acts and performs in like manner to Inductor (L2) since both Inductor (L1/L2) are physically the same size and shape.
established VIC
Inductance Reactance determines the voltage swing from the highest voltage level (Vn) to the volts switch-off point (Vff), and establishes Impedance (FL) which minimizes heat loss of electrical input...
established VIC
Inductance Reactance effectuates the 'Step Charging Effect' (680, per Figure 7-7) when the Pulse off-time (T2) is less than the Pulse on-time (T1).
established VIC
Inductance Reactance doubles the input frequency (64a * 64b) when a 50% Duty Cycle Pulse (T1 = T2) is inputted, while also increasing applied voltage amplitude (Vo-Vn).
established VIC
Inductance Reactance directly determines Stored Energy (Wa), which is controlled by the input Voltage Potential as attenuated or varied via Voltage Amplitude (Vo, Va, Vb-Vf, Vg-Vn, per Figure 7-13) an...
established VIC
Stored energy (Wa) in Joules (Watt-seconds) is a function of Inductance (L) in Henries and current (I) in amperes, per the stated energy relationship for Inductance Reactance.
established VIC
Lengthening the Inductor (L1/L2) lengths applies an even higher Voltage Potential (66/67) across the Resonant Capacitor (140-170, labeled ER), because Inductance Reactance stores energy.
established VIC
The electromagnetic coupling fields encourage the Voltage Inducement Process across the VIC Impedance Network Circuit without amp 'influxing' (i.e., inhibiting amp flow) between the Positive Voltage P...
established VIC
The Electron Inhibiting Effect combined with the Voltage Enhancement Effect is achieved because stainless steel 430F/FR wire-material is electromagnetically inductive to incoming flux lines without th...
established VIC
At elevated voltage amplitudes, the primary electromagnetic coupling field (Rp), transmitted via the Inductance Pulsing-Core through the VIC Coil Assembly, passes through both Inductors L1 and L2 simu...
established VIC
The blocking action of L2's field prevents and inhibits electron flow from passing through or arcing over the capacitor water-gap (Cp); this is termed the 'Electron Inhibiting Effect' (631).
established VIC
Inductance Field L1-FL1 performs the 'Capacitance Charging Effect' (628), while at the same time Inductor Field L2-FL2 restricts electron movement through the VIC Impedance Network Circuit by locking...
established VIC
Adjusting the programmable pulse-waveform input signal frequency 'tunes-in' to the dielectric property (Re) of water, reducing amp flow to a minimum while allowing voltage potential to rise toward inf...
established VIC
Both Inductors L1 and L2 are bifilar wound in equal length so their electromagnetic field intensities are equal (FL1 = FL2), promoting the 'Electron Bounce' phenomenon.
established VIC
Inductors L1-L2 (Figure 7-6), placed on opposite sides of the water-capacitor ER, act as Resonant Charging Chokes (614/615) and together form the Resonant Voltage Effect Circuit (670).
established VIC
Inductance Reactance occurs when resistance (Rs), capacitance (Cd), and Inductance (FL) interact during D.C. Pulsing, increasing voltage across the water-capacitor (ER) beyond the applied Voltage Pote...
established VIC
All dielectric coatings on the VIC wire have an effective 3KV per mil dielectric value and are formulated to endure the automotive temperature range from -40°C to 155°C.
established VIC
Both magnet wire sizes (622/623), the Primary and Secondary Pickup Coils, use solderable Nysol (Polyurethane Nylon Jacket) insulation enamel coating as an electrical shield-material.
established VIC
The stainless steel resonant charging choke wire (614/615) is coated with the 'Pyre-ML' trade name 'Himol' polymer coating-material to impart thermal and mechanical resistance.
established VIC
The Secondary Pickup Coil (623) of the VIC uses 35 AWG (.007 in) copper wire equal to 13K ohms per pound weight.
established VIC
The Primary Coil (622) of the VIC uses 22 AWG (.028 in) copper wire equal to 5.1933 ohms per pound weight.
established VIC
Resonant Charging Chokes (614/615) are made of 430F/FR 36 AWG (.006 in) stainless steel (s/s) wire, which equals 60 micro ohms per centimeter.
established VIC
The series resistance value (Rs) of the VIC choke/coil windings is determined by the composition of the wire material in terms of its ohmic value (electrical resistivity) per given length and diameter...
established VIC
The circular-spiral turns of wire in the VIC choke, forming parallel electrical surfaces, are separated by an Insulated Dielectric Coating Material which forms a series of capacitors (Cda-Cdn) when ma...
established VIC
Inductors (614) and (615) of the VIC are wound or coil-wrapped, per the multi-layer equation (Eq. 20), to increase magnetic flux intensity between the turns (618a-618n) of the coil-wrap (640).
established VIC
Distilled water is generally lab-tested at 1 ppm or less contamination, as illustrated in Figures (7-15) and (7-14).
established VIC
Electron interaction (movement of electrons through the liquid medium of water) is further inhibited since natural water contaminants (144a...144n) are normally less than 20 ppm.
established VIC confidence 0.80
The stabilized water molecule structure (85) maintains molecular stability by opposing the exchange of electrons from an external electron source (amp-inducing circuit) beyond its molecular structure.
established VIC
The established Dielectric Value of Water (85) is 78.54 ohms, attributed to the electron 'L' orbit of the water molecule occupying the maximum allowable eight electrons upon covalent linkup of one oxy...
established VIC
Distributed Capacitance (Cda...Cdn) and Distributed Inductance (D1a...D1n) of Inductor Coil (614) interact with the dielectric value of the water bath (85/Re), producing the 'Electrical Charging Effec...
established VIC
Component Reactance to D.C. pulsing transforms the Inductor (614)/Capacitor (E9/E10) LC circuit into a Resonant Charging Choke, which steps up a unipolar oscillation at a given charging frequency, usi...
established VIC
Capacitor (E9/E10) as to (720) of Figure (7-11) is formed when outer tapered surface (66) and inner tapered surface (67) create Water-Gap (616), with Dielectric Water Bath (85/Re) placed between them,...
established VIC
Inductor (614) is an insulated wire wound in a spiral pathway around Bobbin Cavity (580) of Figure (6-1) to form the Voltage Stepping Coil (710) of Figure (7-10).
established VIC
Resonant Charging Circuit (630) of Figure (7-2) is an LC circuit formed when Inductor (614) of Figure (7-1) is electrically linked in series with Taper Capacitor (720) of Figure (7-11).
established VIC
Applied opposite Voltage potential (ST-ST' to RU-RU') performs work without amp "influxing," as systematically depicted in the VIC Matrix Circuit (690).
established VIC confidence 0.80
The dielectric value of Water (Re) is a functional part of the Voltage Intensifier Circuit (110 of Figure 4-9), contributing to its capability of restricting amp flow during Voltage Pulsing Operation...
established VIC
While restricting current, the stainless steel coil-wrap simultaneously conducts and transmits Voltage Potential across its circumference surface area (skin effect) (66/67 of Figure 7-11, referencing...
established VIC
Because of the atomic composition of the stainless steel wire material (Rs1/Rs2), electron interaction/interchange between atomic structures is opposed, restricting current flow to the milliampere ran...
established VIC
The stainless steel (s/s) coil-wrap (614/615) resistive wire value (Rs1/Rs2) shown in Figure 7-8 is typically 11.6K ohms per coil, an amount sufficient to inhibit current flow oscillation in relation...
established VIC
The output voltage-wave signal (64a-64n) is a pulse-frequency doubler due to the Inductance Reactance (FL) of Inductor Coil (56, Figure 3-22): when the magnetic field (FL, Figure 7-3b) collapses, it r...
established VIC
A gated pulse-frequency pulse-train (64a/64b - T3 - 64a/64b) forms when pulse off-time (T3) is greater than time-period (T2); the input pulse-train (49a-49n) off-time (T2) is adjusted to allow the Uni...
established VIC
Diode (55) is placed between the Secondary Pickup Coil (52) and Resonant Charging Choke (56) to act as an electronic switch in the open position during pulse off-time (T2, Figure 7-8), preventing reve...
established VIC
Switching Diode (55, Figure 3-22) prevents bidirectional electron flow (current flow in one direction only) since the Blocking Diode only conducts current in the direction of the schematic arrow, plac...
established VIC
The VIC-VB circuit (620, Figure 7-1) allows reduction of Capacitor-Gap (Cp) (616, Figure 7-11) width spacing (57 of Figure 3-25 ~ 35 of Figure 6-2), typically .060 to .010, as illustrated in the Tubul...
established VIC
VIC Voltage Enhancement Circuit (VIC-VB) (620, Figure 7-1) incorporates stainless steel wire-wrap coils (614/615) to form a unipolar gated pulse-wave (64a...T3...64n) without signal distortion or degr...
established VIC
VIC voltage circuit (60) utilizes copper wire-wrap to form Resonant Charging Chokes (56/62, Figure 3-22) in conjunction with Switching Diode (55) to encourage the 'Electron Bounce' phenomenon (700, Fi...
established VIC
Voltage Intensifier Circuit (60) of Figure 3-22 (Memo WFC 422 DA / WFC 420) and Voltage Intensifier Circuit (620) of Figure 7-1 are both specifically designed to restrict amp flow during Programmable...
established VIC
The Voltage Intensifier Circuit takes advantage of the 'Electron Bounce Phenomenon' to trigger the Hydrogen Fracturing Process without amp influxing, and the Taper Resonant Cavity functions as a Volta...
established VIC confidence 0.80
The operational parameter of the VIC utilizes 'Opposite Electrical Attraction Force' of high voltage intensity to instantly release thermal explosive energy (gtnt) from natural water.
established VIC
The mode-of-operability of the VIC Coil Assembly allows voltage potential of opposite polarity to increase and be attenuated up to and beyond 20 kilovolts while inhibiting and restricting amp leakage...
established VIC confidence 0.80
The "Mode of Operability" of the VIC Coil Assembly is systematically activated by a programmable signal input, indicating the circuit's operation is controlled via a programmable driving signal.
established VIC
By simply altering the Voltage Wave Guide to form either a "compressional" or "Expanded" Voltage Wave Form, the Water Fuel Injector increases electrical voltage intensity beyond the applied excitation...
established VIC confidence 0.80
The Water Fuel Injector is interlinked with the VIC Coil Assembly and acts and performs as a "Voltage Amplifier" by altering the Voltage Wave Guide.
established VIC
The Voltage Intensifier Circuit takes advantage of the "Electron Bounce Phenomenon" to trigger the Hydrogen Fracturing Process without amp influxing, meaning water dissociation occurs via voltage effe...
established VIC
The VIC Coil Assembly is specially designed to allow a voltage potential of "opposite electrical attraction force" at high voltage intensity to instantly release thermal explosive energy (gtnt) from n...
established VIC
The Voltage Intensifier Circuit (110) brings on the 'Electrical Polarization Process' (160) that switches off the covalent bond (550) of the water molecule without amp influxing.
established VIC
Resonant Action (point of particle oscillation) occurs when the applied pulse voltage frequency (item 46, Figure 5-5) is adjusted to 'tune-in' to the Dielectric Resonance of water via the Voltage Inte...
established VIC
The Voltage Intensifier Circuit brings on the Electrical Polarization Process that switches off the covalent bond of the water molecule without amp influxing.
established VIC
In the Rotary Crossover Voltage Sync-Pulse Circuit (850), each of the three VIC Pickup Coils (52A, 52B, 52C) are axially spaced 120° apart, causing Convergent Point 'Q' to be located 1/3 the height of...
established VIC
To maintain the Capacitance Charging Effect across the Water-Gap (Cp) during applied pulsing operations, a Crossover Voltage Wave-Form (780B/780C) is used, preventing Convergent Point 'Q' from reachin...
established VIC
Blocking Diode (618) functions as an Electrical Isolator that prevents electrical discharge of the Dual Secondary Coil (616A/B) during applied Pulsing Operations.
established VIC
Amp Inhibiting Coil-Assembly (617) is made of magnetic inductance Stainless Steel 430FR wire material wrapped around a closed-loop Induction Magnetic Core (619), forming a separate coil-unit (860) apa...
established VIC
Balance Phasing of opposite voltage intensity (+Vpp/-Vpp) is accomplished without current influxing caused by differential variances between Negative Voltage Peak Potential (-Vpp) and Positive Voltage...
established VIC
Amp Inhibitor Circuit (860), consisting of Amp Inhibiting Coil (617), Blocking Diode (618), and Magnetic Induction Core (619), is placed between electrical ground (0V) and the Center Tap of Dual Bifil...
established VIC
Dynamic State Space causes the Opposite Electrical Attraction Force (RR'-SS') to continually vary in intensity, forming a Voltage Peak Curve (Vpc); Static State Space allows the Opposite Attraction Fo...
established VIC
Static State Space voltage pulse shaping (clipped waveform) is produced by way of the Programmable Pulsing Circuit (WFC project 422DA/423DA) electrically interfaced with the VIC Matrix Circuit (690),...
established VIC
'Dynamic State Space' exists when the Voltage Excursion Point 'P' is always changing in a given space-time; 'Static State Space' exists when Point 'P' remains constant during a precise period at Peak...
established VIC
Equalizing Voltage Pulse-Scan (Bps) from the start of one Voltage Pulse-Field (Vpf) to the start of the next is determined by the total average number of applied Voltage-Pulses (Vp ave.) making up the...
established VIC
The intensity of the Opposite Electrical Attraction Force (RR'-SS') is directly related to the applied Voltage Amplitude Burst-Time (Vpa-Vn-Vpb), the Voltage Burst-Frequency (49a...49n), and the Volta...
established VIC
Each Voltage Pulse duration time-period (T1 on-time) is directly related to the applied Voltage-Pulse Amplitude (Vo...Vn) and the reoccurring Voltage Pulse Frequency (49a...49n), together forming the...
established VIC
The Secondary Voltage pickup coil (52) of Figure 7-8 displaces and separates the Resonant Charging Chokes (56/62), positioning them on opposite ends of the Secondary Pickup Coil.
established VIC
The opposite negative Voltage Pulse Train (67, 602a...602n) is formed by the 'Electron Clustering Effect' (631) of Figure 7-9, producing a Negative Electrical Voltage Intensity (67) equal in magnitude...
established VIC
In the inactivated electrical state, the VIC Matrix Circuit (690) behavior is governed by Circuit Resistance Equations (Eq. 9), which allow the positive Voltage Pulse-Wave (583) to be duplicated in su...
established VIC
Because the two Resonant Charging Chokes have matched resistive values, coil-ringing is prevented during each pulse off-time, allowing the Electron Bounce Phenomenon (EbP) to occur without amperage in...
established VIC
Both Resonant Charging Chokes (56/Z2 and 62/Z3) have the same resistive value, typically 11.6 kΩ each, which keeps the leading edge (Vpa) and trailing edge (Vpb) of the unipolar Voltage Pulse-Wave uni...
established VIC
The Voltage Intensifier Matrix Circuit, electrically connected with the resistive liquid (water, Re), forms a Resonant Water Gap referred to as 'Cp', and propagates the Traveling Voltage Wave-Form acc...
established VIC
The dielectric property of water (85), resistance to electron flow, in conjunction with the VIC Coil Matrix Circuit and VIC Coil Assembly, inhibits amp 'influxing' (Electron Bounce Phenomenon, EbP) du...
established VIC
The voltage intensifier circuit 12 regulates voltage amplitude, pulse frequency and gated pulse frequency associated with operation of the fuel cell 7, and is interconnected to the gas management modu...
established VIC
The circuit of Figure 9 enhances voltage potential across the resonant charging choke coils during pulsing by allowing an external electromagnetic pulsing field F, from energized primary coil A, to tr...
established VIC
A voltage intensifier circuit (Figure 7) is used as a current restricting voltage source to provide excitation voltage to the resonant cavity, sustaining atomic elongation of gas ions before ignition,...
established VIC
Figure 4's control means directs 0-12 volts across the primary coil of the pulsing core, and depending on core design parameters, the secondary coil can be set up for a predetermined maximum voltage s...
established VIC
Assuming a resonant pulse of 5 KHz, a 0.5 Hz gate pulse may be superimposed to provide 2500 discrete pulses in a 50% duty cycle per Hz, illustrating how the gate pulse frequency generator (Figure 6) c...
established VIC
In the VIC pulsing core, the coils are preferably wound in the same direction to maximize the additive effect of the electromagnetic field, and the transformer core acts as a pulse frequency doubler.
established VIC
The high speed switching diode used in the VIC circuit (Figure 10) prevents charge leakage from the water capacitor and ensures uni-polar pulses without discharging the capacitor; a 600 PIV fast switc...
established VIC
Voltage to the water capacitor cell increases according to coil turns and size as in a standard transformer; for example, 12 volts to the primary coil with a 30:1 secondary/resonant-charging-choke tur...
established VIC
A pickup coil on the ferromagnetic/electromagnetic transformer core senses the resonant condition of the water capacitor and is interconnected to a scanning circuit and phase lock loop (PLL) circuit t...
established VIC
The pulse generation means includes an adjustable first resonant frequency generator and a second gated pulse frequency generator; the gate pulse controls the number of resonant-frequency pulses sent...
established VIC
The secondary (TX2) transformer is connected to the resonant cavity water capacitor cell via a high speed switching diode and resonant charging chokes (TX4, TX5), forming a closed loop circuit that us...
established VIC
The circuit of FIG. 9 enhances voltage potential across the resonant charging choke coils by allowing an external electromagnetic pulsing field (F), derived from primary coil A being energized, to tra...
established VIC
A voltage intensifier circuit such as shown in FIG. 7 is used as a current-restricting voltage source to provide the excitation voltage applied to the resonant cavity, sustaining atomic elongation pri...
established VIC
The wiper arm on the second inductor tunes the circuit and accommodates to contaminants in water so that charge is always applied to the capacitor (the water cell).
established VIC
As pulse frequency is adjusted to achieve resonance, amp flow is minimized while voltage is maximized to a peak; the resonant frequency of a given cavity depends on water dielectric parameters, plate...
established VIC confidence 0.80
An alternate coil arrangement using a conventional M27 iron transformer core is shown in FIG. 9, with the coil wrap always in one direction only.
established VIC
The overall circuit is characterized as a 'resonant charging choke' circuit — an inductor in series with the water capacitor forming a resonant circuit — with such a resonant charging choke placed on...
established VIC
The primary coil of the toroid is subjected to a 50% duty cycle pulse; the first inductor following the toroid is formed from 100 turns of 24 gauge wire, 1 inch in diameter, and when the pulse ends it...
established VIC
In the circuit of FIG. 2, an IN1198 diode acts as a blocking diode/electric switch allowing voltage flow in one direction only, so the capacitor is never subjected to reverse polarity; the diode also...
established VIC
The step-up coil is wound on a toroidal core of compressed ferromagnetic powder (Ferramic Q6 'Permag' powder) that will not permanently magnetize; the core is 1.50 inch diameter and 0.25 inch thick, w...
established VIC
The wiper arm on the second inductor tunes the circuit and accommodates to contaminants in the water so that charge is always properly applied to the water capacitor.
established VIC
The overall circuit is a 'resonant charging choke' circuit — an inductor in series with the water capacitor forming a resonant circuit — with such a resonant charging choke placed on each side of the...
established VIC
The stepped-up pulse enters a first inductor formed from 100 turns of 24 gauge wire, 1 inch in diameter, around which an electromagnetic field forms; when voltage switches off at pulse end, the field...
established VIC
The primary coil of the toroid is subjected to a 50% duty cycle pulse; the toroidal pulsing coil provides a voltage step-up from the pulse generator in excess of five times, with actual step-up ratio...
established VIC
A 1N1198 diode in the circuit acts as a blocking diode/switch allowing voltage flow in one direction only, so the capacitor is never subjected to reverse polarity; the diode also allows the inductor's...
established VIC
The step-up coil is formed on a toroidal core of compressed ferromagnetic powdered material (e.g. 'Ferramic Q6 Permag' powder), 1.50 inch in diameter and 0.25 inch thick, with a primary coil of 200 tu...