Resonant Charging Choke
As the sources put it
Figure (3-21) Figure (3-20) Figure (3-26) Figure (3-24) Negative electrical voltage potential (61) of pulse wave (65a xxx 65n) of Figure (3-21) is simultaneously applied to negative voltage zone (67) via Resonant Charging Choke (62) of Figure (3-22) which is electrically linked to opposite end of Primary Coil (26).
Where it appears · 55
Documents 11
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Voltage Intensifier Circuit (60)
4× · introduced
…65a xxx 65n) of Figure (3-21) is simultaneously applied to negative voltage zone (67) via Resonant Charging Choke (62) of Figure (3-22) which is electrically linked to opposite end of Primary Coil (26). The resultant signal…
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Propagating Electrical Stress
4× · introduced
…rcuit. Amp Inhibiting Circuit (970) of Figure (10-1) (690) of Figure (7-8) The energized "Resonant Charging Choke" (56) of Figure (7-1) as to Figure (10-1) by way of input voltage-pulses (49a xxx 49n) creates an electromagn…
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Inductance (FL)
1× · introduced
…of Figure (7-1) / Capacitor (E9/E10) of Figure (7-11) LC circuit of Figure (7-2) into an Resonant Charging Choke (614) which steps up an unipolar oscillation of an given charging frequency with the effective capacitance of…
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LC Circuit
1× · introduced
Resonant Charging Choke (C) in series with Excitor-array (E1/E2) forms an inductor-capacitor circuit (LC) since the Excitor-Array (ER) acts or performs as an capacitor during pulsing operations, as illustrated in Figure (1-…
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CIRCUIT COMPONENT INTERACTION
1× · introduced
…nergy in the direction of the schematic arrow. LC CIRCUITFigure 1-2. LC Circuit Schematic Resonant Charging Choke (c) in series with Excitor-array (E3/E4) forms an inductor-capacitor circuit (LC) since the Excitor-Array (ER…
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Instant Explosion of Water
1× · introduced
…(55) of Figure (3-22) ... Diode (55) being placed between Secondary Pickup Coil (52) and Resonant Charging Choke (56) to act as an electronic switch in open-position during pulse off-time (T2) of Figure (7-8) while prevent…
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Gas Processor
1× · introduced
…igure (3-22) except amp consuming device (390) (such as a light bulb 11_2) placed between Resonant Charging Choke (56) and Gas Resonant Cavity (410) of Figure (3-34) is added to pulsing circuit (60) to cause and convert lib…
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Amp Inhibiting Circuit Vs Voltage Enhancement
1× · introduced
…when applied Pulse-Voltage Frequency (49a xxx 49n) passes through the positive energized Resonant Charging Choke (56). Figure 1-19A Figure 1-19B Furthermore, the paired coils-wires opposite voltage potential [positive elec…
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RE: Electrical Particle Generator
2×
…Pulse Voltage Frequency (h) D-110 VDC Isolated Pulsing Transformer (m) Blocking Diode (f) Resonant Charging Choke (c) (Resistive Coil-Wire R7) Excitor-Array (ER) Secondary Pickup-Coil (n) (Resistive Wire-Coil R4) "Tuned" Re…
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ENERGY of the FUTURE - R&Z - Vol 1 No. 6, 1990
1×
…ode "only" conducts electrical energy in the direction of the schematic arrow. LC Circuit Resonant Charging Choke (c) in series with Excitor-Array (E1/E2) forms an inductor-capacitor circuit (LC) since the Excitor-Array (ER…
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Voltage to Amp Differential Ratio
1×
…xxx 16/gtntnl+ 16/gtntn2 + 16/gtntn ... etc.) is accomplished by increasing the number of Resonant Charging Choke Stages (xxx 56/62n + 56/62n 1+ 56/62n2 + 56/62n ... etc. -S- xxx SS56/62n + SS56/62nl + SS56/62n2 + SS56/62n…
Patents 6
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A control and driver circuits for a hydrogen gas fuel producing cell
6×
…se generation means. The secondary coil of the transformer may include segments that form resonant charging choke circuits in series with the water capacitor plates. In the pulse generation means, an adjustable first, reson…
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Process And Apparatus For The Production Of Fuel Gas And The Enhanced Release Of Thermal Energy From Such Gas
6×
…tor, in which the water is included as a dielectric liquid between capacitor plates, in a resonant charging choke circuit that includes an inductance in series with the capacitor; (B) subjecting the capacitor to a pulsating…
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Process & Apparatus For The Production Of Fuel Gas & The Enhanced Release Of Thermal Energy From Such Gas
6×
…tor, in which the water is included as a dielectric liquid between capacitor plates, in a resonant charging choke circuit that includes an inductance in series with the capacitor. (B) subjecting the capacitor to a pulsating…
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Method For The Production Of A Fuel Gas
5×
…3 D.C. POWER SUPPLY \ PULSE \ GENERATOR GATED PULSE 50% DUTY-CYCLE Gate TRAIN PULSE TIME RESONANT CHARGING CHOKE BLOCKING (VARIABLE) HW PRIMARY i COIL AND VOLTAGE AMPLITUDE CONTROL (VARIABLE) CONTROL CIRCUIT = TOROIDAL > L…
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Method For The Production Of A Fuel Gas
4×
…tor, in which the water is included as a dielectric liquid between capacitor plates, in a resonant charging choke circuit that includes an inductance in series with the capacitor; (B) subjecting the capacitor to a pulsating…
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Hydrogen Aeration Injection System
2×
…capacitor, in which the water is included as a dielectric between capacitor plates, in a resonant charging choke circuit that includes an inductance in series with the capacitor; (B) subjecting the capacitor to a pulsating…
Bench findings 38
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Circuit topology: resonant charging choke (inductor in series with capacitor) on each side of the water capacitor
2×
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 each side of the capaci…
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Resonant charging choke circuit topology: inductor in series with water capacitor, chokes on each side
2×
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 capacitor.…
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Resonant Charging Chokes (56) and (62) create coupled electromagnetic field causing amp restriction
2×
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 Resonant Charging Choke…
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VIC formed by primary/secondary coils, diode, chokes, and resonant cavity
2×
Primary coil (26), pulsing core (53), secondary coil (52), switching diode (55), resonant charging choke (56), resonant cavity assembly (170), natural water (68), and variable resonant charging choke (62) together form the…
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VIC Diagram AA topology: gated pulse train through blocking diode into bifilar chokes forming resonant cavity capacitor
2×
…, a gated variable amplitude pulse train (49a...49n) passes through a blocking diode into Resonant Charging Choke (56, primary) and Resonant Charging Choke (62, secondary), which are bifilar-wound equal-length coils about a…
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Resonant Charging Choke (56) couples to grounded choke (62) via mutual inductance
2×
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 through the electrically…
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Resonant Charging Choke and Excitor-Array form an LC circuit
1×
Resonant Charging Choke (c) in series with Excitor-Array (E3/E4) forms an inductor-capacitor (LC) circuit, since the Excitor-Array (ER) of the Gas Resonant Cavity (t) acts as a capacitor during pulsing operations.…
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Resonant charging choke to ground completes the VIC circuit
1×
The Resonant Charging Choke (43), connected to electrical ground, forms and completes the Voltage Intensifier Circuit 9XA as referenced in schematic 20YA.…
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Resonant Charging Choke (43) is a resistive wire coil component
1×
The Resonant Charging Choke is identified as component (43), a resistive wire coil, within the Electronic Interfacing Circuit of the Voltage Intensifier Circuit.…
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Resonant Charging Choke (43) sets oscillation frequency with pulse-forming network capacitance
1×
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 order to charge a line…
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High voltage output forms positive voltage zone (45) across water-immersed surface
1×
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-charging graph 16A/20YA Secti…
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Second Resonant Charging Choke (47) placed between negative voltage zone (44) and ground (48)
1×
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) within the Resonant Cavity…
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Wire-coil (47) resistive value prevents amp flow like a Resonant Charging Choke
1×
…istive value of the wire-coil (47) prevents amp flow while performing in like manner as a Resonant Charging Choke.…
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VIC electronic interfacing circuit components identified
1×
…it consists of a Secondary Pickup Winding (42, resistive wire coil), Blocking Diode (14), Resonant Charging Choke (43, resistive wire coil), Resonant Cavity Inner Surface (45, Positive Electrical Voltage Zone), and Resonant…
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Resonant Charging Choke (47) to ground completes the VIC
1×
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.…
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Voltage zone 45 forms positive pulse potential across surface immersed in natural water
1×
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 16A/20YA Section AA.…
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Choke (47) maintains cavity capacitance/voltage level as amp inhibitor
1×
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 pulsing, with its resistive…
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Circuit tuning matches resonant characteristic via pulse frequency generator and choke-coil
1×
…eristic of the total system by adjusting the pulse frequency generator (2) and the series resonant charging choke-coil (12); gas output is then adjusted via the variable gate control circuit (5) and DC power supply (1) leve…
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Bifilar coil distributed capacitance/inductance produce compounding magnetic field-strength causing voltage enhancement
1×
…on) each pulsing cycle as pulse-voltage frequency passes through the positively energized Resonant Charging Choke (56).…
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Resonant Charging Choke (43) is a modulator inductor setting charging oscillation frequency
1×
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 charge a line to high voltag…
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VIC choke wire uses Pyre-ML/Himol polymer coating for thermal/mechanical resistance
1×
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.…
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FIG. 9 circuit uses external electromagnetic pulse field via primary coil and switching diode
1×
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 traverse coil windings D a…
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Resonant circuit uses water as dielectric between conductive members forming a capacitor
1×
Per claims 1 and 3, the resonant electronic circuit includes a resonant charging choke, and water is included as a dielectric between conductive members that form a capacitor in the resonant circuit; the dielectric property…
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Water capacitor cell uses water as dielectric between plates in resonant charging choke circuit
1×
…capacitor in which water is the dielectric liquid between capacitor plates, included in a resonant charging choke circuit consisting of an inductance in series with the capacitor.…
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Resonant charging chokes flank the water capacitor on each side
1×
A resonant charging choke is placed on each side of the water capacitor; a diode acts as a switch allowing the inductor's magnetic field to collapse, doubling the pulse frequency and preventing the capacitor from dischargin…
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Figure 9 circuit enhances voltage across resonant charging choke coils via external pulsing field
1×
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 traverse coil windings D…
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WFC water capacitor forms a resonant charging choke circuit with water as dielectric
1×
Per claim 1, a capacitor includes water as a dielectric between capacitor plates in a resonant charging choke circuit that includes an inductance in series with the capacitor; the water molecules are subjected to a pulsatin…
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Resonance of the water fuel cell circuit is determined by water's dielectric property
1×
…r determines the resonance of the circuit; per claim 4/5, the resonant circuit includes a resonant charging choke with water as dielectric between conductive plates forming the capacitor.…
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Diode (55) sits between Secondary Pickup Coil (52) and Resonant Charging Choke (56) acting as an open switch during pulse off-time
1×
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 reverse electron flow when…
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DC pulsing transforms the LC circuit into a Resonant Charging Choke that steps voltage above input
1×
…ctance 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, using the effective capacitance of a pu…
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Multiple Resonant Charging Choke Stages are sequentially connected and magnetically coupled
1×
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-polarity Voltage Wave bur…
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Energy yield increases by adding more Resonant Charging Choke Stages in sequential order
1×
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 number of Stainless St…
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Choke and Excitor-Array form LC circuit
1×
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, Fig 1-1).…
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Resonant charging choke and Excitor-Array form an LC circuit with water as dielectric capacitor
1×
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 electrical plates (66/67…
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Electron Extraction Circuit functions like the VIC but adds an amp-consuming device
1×
…t (60), except an amp-consuming device (390), such as a light bulb, is placed between the Resonant Charging Choke (56) and the Gas Resonant Cavity (410), converting liberated electrons into radiant heat/light energy.…
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Resonant Charging Choke (c) is a resistive coil-wire labeled R7
1×
The Resonant Charging Choke (c) is identified as a resistive coil-wire component designated R7 in the circuit.…
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Distributed capacitance/inductance of bifilar coils compounds magnetic field strength each pulse
1×
…each pulsing cycle as the pulse-voltage frequency passes through the positively energized Resonant Charging Choke.…
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'Tuned' Resonant Charging Choke (y) is a resistive wire-coil labeled R6
1×
A second, separately tuned Resonant Charging Choke (y) is specified as resistive wire-coil R6, distinct from the R7 charging choke (c).…