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
1,304 published findings from the ongoing work — what has been established, calculated and observed at the bench, each traceable to the session that produced it.
established VIC
The component arrangement of the Voltage Intensifier Circuit (9XA as to 20YA) retards or prevents amp flow through the circuit.
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 WFC
The resonant cavity fuel cell can produce more than 115-cc/min of gases at one amp leakage.
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 WFC
To prevent electrical discharge of gas particles when the resonant cavity (44) and gas attraction zones (57) are submerged in natural water, the fuel cell housing is composed of electrical insulating...
established WFC
Adding more accelerator tubes (56a through 56n, Figure 20B) per resonant cavity stage increases gas yield further; varying the gate switch circuit (58) or sequentially switching accelerator tube array...
established WFC
By repeating the gas attraction process (Figure 20A) many times, charged gas particles increase in velocity since sequential gate circuit (58) applies greater voltage potential per gas attraction stag...
established WFC
To increase particle collision, accelerator tube (56) of Figure 20A is placed between resonant cavity stages (Figures 20 and 20D); expelled charged gases move through oppositely electrically charged p...
established WFC
The geometrical gas production rate peaks out or stops when water flow rate into the resonant cavity becomes constant or reduced during gas production.
established WFC
Geometrical gas production (Figures 13, 14, 15) occurs when resonant cavities are stacked exit port to inlet port, or as a singular cavity unit; charged gas particles are injected into additional reso...
established WFC
Since liberated electrons carry a negative charge, the positive voltage pulse causes them to move uniformly at the pulse voltage frequency, further aiding the compounding (resonant) action.
established WFC
Because ions are in motion, particle collision occurs when ion particles strike water molecules undergoing voltage separation, increasing gas yield; particle collision also ionizes other liberated ato...
established WFC
Formed ions are deflected by high-intensity voltage pulses (53/54); increasing pulse voltage frequency increases ion movement, decreasing frequency slows it, constant frequency yields constant movemen...
established WFC
As liberated gases are exposed to a pulsating laser or light-emitting source (45), gas atoms absorb light radiation and lose electrons, becoming positively charged ions; an electromagnetically primed...
established WFC
Water molecules, having polar charges, are subjected to a high-intensity voltage pulse that separates the water molecule atoms by opposite polarity attraction, liberating hydrogen and oxygen gases fro...
established MISC
The semiconductor laser package is variable pulsed from 1Hz to 1KHz or higher to help trigger gas ionization during the resonant-action process.
established MISC
In application, semiconductor lasers are used in packaged form to transmit the generated laser or light energy to the resonant cavity.
established MISC
The laser assembly (45) can be any type of conventional laser that operates in the visible and/or ultraviolet region.
established WFC confidence 0.80
The absorbed electromagnetic (light) energy (45) by the atoms forming the water molecule helps disrupt the electrical mass equilibrium of the water molecule atoms when subjected to the high-intensity...