established WFC
Voltage pulse frequency (e) varied from 1 Hz to 1 MHz+ to increase gas yield
Voltage pulse frequency (e) is varied from 1 Hz to 1 MHz and beyond, further increasing gas-yield.
Bench
1,315 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 WFC
Voltage pulse frequency (e) is varied from 1 Hz to 1 MHz and beyond, further increasing gas-yield.
established WFC
Voltage amplitude (d) is varied to increase gas-yield; after step-up, the applied voltage range to the resonant cavity (44) is from less than one volt to 5,000 volts or more.
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 WFC
Gated pulse (H) relative to gated pulse (J) is proportionally changed to concentrate or expand applied voltages to the resonant cavity (44); the gated pulse train's on-time (53) versus off-time (54) i...
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 EPG
In either Quiescent or Active-State, the resultant magnetic field transverses pickup-coils to produce electrical energy.
established EPG
In Active-State, the laser energy is pulsed and passes through the Gas-Lattice to produce a magnetic pulse-wave, as illustrated in Figure 29 as to Figure 26A and 26B.
established EPG
In Quiescent-State, the laser energy is superimposed onto the Gas-Lattice and 'stored' inside the close-loop tubular EPG system to maintain a given or predetermined magnetic field strength during EPG...
established EPG
Nickel ions and cobalt ions are interchangeable with and duplicate the magnetic properties of Iron ions undergoing Laser priming.
established EPG
Increasing Laser intensity increases the magnetic field strength of the gas-lattice in a linear function.
established EPG
The spinning electrons simply interact with both electrostatic forces and electromagnetic forces to produce an enhanced magnetic field, an extension of 'The Electron Theory Of Magnetism'.
established EPG
The absorbed Laser energy forces the Iron ions' electrons to spin at a faster rate when taken to a higher energy level, which in turn amplifies and strengthens the magnetic field (Domain magnetic fiel...
established EPG
Magnetic Field Enhancement occurs when the Magnetized Gas-Lattice, placed inside the EPG close-loop tubular system, is exposed to and interacts with Laser energy, as illustrated in Figure 29 WFC Tech-...
established EPG
Magnetic Field Strength is 'measured' in GAUSS UNITS and is determined by the linear volume of the Gas-Lattice.
established EPG
Grouping the Magnetic Flux-Lines together forms a 'stable' magnetic field since the magnetic coupling-field between the Iron ions or Domains helps hold the Iron ions in linear alignment beyond the bon...
established EPG
The Argon atom electrons tend to pair-off in orbits with opposite spins, which prevents the formation of a second magnetic field.
established EPG
The Magnetic Flux Line follows the alignment of the Iron ions (Fe+ xxx Fe+), since Argon ions (Ar+ xxx Ar+) act as an insulator to the flow of magnetic Flux-Lines.
established EPG
Since the electrons of the Iron ion (Fe+) spin in one direction only (Nickel and Cobalt ions likewise), the magnetic field of each Iron ion, called Domains, unite to form a discrete magnetic field cal...
established EPG
The newly 'structured' Gas-Lattice becomes magnetized when momentarily exposed to a magnetic field, as illustrated in Figure 1-9.
established EPG
Gas-Lattice formation of unlike atoms by way of the Electron Extraction Process is, hereinafter, called 'The Gas Bonding Process'.
established EPG
During Gas-Lattice formation, Iron ions (Fe+) can be replaced by other atoms exhibiting magnetic properties such as Nickel ions (Ni+) or Cobalt ions (Co+).
established EPG
Covalent bonding between like atoms does not occur due to the 'stronger' Electrical Attraction-Force (qq') between unlike atoms, which favors bonding between Argon and magnetic metal ions instead.
established EPG
Stable-state of the Gas-Lattice occurs when the covalent shell of each unlike atom structure becomes full: the Argon atom (Ar) has a covalent shell of 8 electrons while the Iron atom (Fe) has a covale...
established EPG
Covalent bonding of Iron ions (Fe+) to the Argon ion (Ar+) continues until a geometrical Gas-Lattice Structure is formed, as illustrated in Figure 1-8.
established EPG
The forming Argon ion (Ar+) is exposed to Iron ions (Fe+), which have magnetic properties, and both undergo the Electron Extraction Process. The two ions (Ar+/Fe+) form a covalent bond when the covale...
established
The Electron Extraction Process, labeled (BB) and shown in Figure 1-7 (corresponding to Figure 20JX), is hereinafter referred to as 'The GAS RESONANT CAVITY.'
established EPG
Laser activated or laser primed gas ions repel the dislodged electrons being consumed, as illustrated in Figure 1-5.
established GASPROC
The dislodged negative charged electrons are destroyed or consumed in the form of heat when the Amp Consuming Device (S), such as a light bulb, is positively electrically energized during alternate pu...