pulse off-time
As the sources put it
Pulse Off-time (T2) of Figure (7-8) as to (620) of Figure (7-1) is adjusted to compensate for the rise and fall of magnetic coupling field (71) to produce applied Unipolar Wave-forms (64a xxx 64n) entering into Wave-guides (35a/35b/35c).
Where it appears · 37
Documents 16
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Instant Explosion of Water
4× · introduced
…of Resonant Cavity (140 - 170) since Blocking Diode functions as an "Open" switch during Pulse Off-time; (56/62) of Figure (3-22) (700) of Figure (7-9) (628) of Figure (7-7) whereas, VIC Voltage Enhancement Circui…
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Voltage Intensifier Circuit (60)
2× · introduced
…cts as a blocking diode by preventing electrical "shorting" to secondary coil (52) during pulse off-time (69) of Figure (3-20) since diode (55) "only" conducts electrical energy in the direction of schematic arrow;…
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Gated Pulse Frequency generator (80)
2× · introduced
…gated pulse train (46a xxx 46n) of Figure (3-17). Together pulse train (44a xxx 44n) and pulse off-time (43) forms gated pulse duty cycle (45). Pulse train (44a xxx 44n) is exactly the same as pulse train (41a xxx…
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Mode of Operability
1× · introduced
…in reference to Linear Voltage Surfaces (35a), as illustrated in (730) of Figure (7-12). Pulse Off-time (T2) of Figure (7-8) as to (620) of Figure (7-1) is adjusted to compensate for the rise and fall of magnetic…
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Variable Pulse Frequency Generator (70)
1× · introduced
…ation, as illustrated in Figure (3-16). Figure (3-5) Figure (3-16) 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 (…
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ENERGY of the FUTURE - R&Z - Vol 2 No. 3, 1991
3×
…uty cycle pulse (39) configuration, as illustrated in Figure (15). Pulse on-time (37) and pulse off-time (38) are equally dis- placed to form duty pulse (39) which is duplicated in succession to produce pulse train…
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Water Fuel Injector (Taper Resonant Cavity Chamber)
1×
…in (220) of Figure (18). Adjusting Pulse-train (210a xxx 210n) in such a way as to allow pulse off-time (T2) to be synchronized with collapsing and re-formation of electromagnetic field coupling across pulsing tra…
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In-Line Circuit Components
1×
…Pulse (T1 = T2) is inputted effectuates "Step Charging Effect" (680) of Figure (7-7) when Pulse off-time (T2) is less than Pulse on-time (T1) ... determining voltage swing from highest voltage level (Vn) to volts s…
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Electron Bounce Phenomenon
1×
…ondary Coil-winding (52) is de-energized by the removal (collapsing magnetic field during pulse off-time T2 of external Magnetic Field (71), the dislodged electrons (641a xx 641n) return to positive charged copper…
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Electron Extraction Process
1×
…Energy "forces" or "deflects" the electrons away from the gas atom nucleus during voltage-pulse Off-Time. The recurring positive voltage-pulse (k) attracts (qq') the liberated negative electrically charged electron…
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Energy Pumping Action
1×
…espectively. Once applied voltage pulse of opposite polarity (66/67) is terminated during pulse off-time, then Energy Aperture (7) automatically adjusts to maintain a given energy level since each aperture oscillat…
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Propagating Electrical Stress
1×
…e since the Blocking Diode (52) prevents the Resonant Cavity (Cp) from discharging during pulse off-time, as so illustrated in Figure (1-4) as to (60) of Figure (3-22) Blocking Diode (52) of Figure (4-9) Figure (1-…
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Voltage to Amp Differential Ratio
1×
…oint of "State of Equilibrium" and returning back to "Stable State of Equilibrium" during-pulse off-time (T2) for repeated "Snapping Action" (Rubberbanding effect) in accordance with bi-polar Voltage Rippling Effec…
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8-3 - Electrical Voltage-Pulse Wave-Transmission
1×
…id of Water (85) there between. Figure (7-8) Thereby, preventing coil-ringing during each pulse off-time ...allowing Electron Bounce Phenomenon (EbP) to occur without amp influxing within VIC Matrix Circuit (690) o…
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Capacitance (Cd)
1×
…orientation (625a xxx 625n) of Figure (7-4) remains in electrical atomic alignment after pulse off-time (T2) aiding the transference of voltage potential during pulse on-time (T1) Figure (7-4) .. allowing the resu…
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A Technique Called "Easer"
1×
…orbit) when Input Pulse Frequency (49) terminates Voltage-Sync Pulse (Vsp) during applied pulse off-time (T2) of Figure (7-8) ... causing spontaneous emission of coherent energy (919) of Figure (10-2) to be emitted…
Bench findings 21
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Switching diode blocks shorting and acts as electronic switch during pulse off-time
2×
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 circuit during…
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Matched choke resistance prevents coil-ringing during pulse off-time
1×
…nant 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 influxing within the VIC Matrix Circ…
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Energy Aperture emits discrete Universal Energy into proton after each pulse's off-time
1×
Once the applied voltage pulse of opposite polarity (66/67) terminates during pulse off-time, the Energy Aperture (7) automatically adjusts to maintain a given energy level, with each aperture oscillation (expansio…
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VIC circuit (60) uses copper wire-wrap Resonant Charging Chokes with a Switching Diode to enable Electron Bounce and Step Charging
1×
…e of the Resonant Cavity (140-170) since the Blocking Diode acts as an open switch during pulse off-time.…
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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×
…d 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 Inductor (L1)'s collapsing electromagnetic field (FL1…
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Gated pulse-frequency pulse-train forms when pulse off-time T3 exceeds time period T2
1×
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 Unipolar Pulse-Tr…
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Output voltage waveform acts as a pulse-frequency doubler due to inductor coil's collapsing magnetic field
1×
…the magnetic field (FL, Figure 7-3b) collapses, it re-cuts the coil-wrap (L1) during each pulse off-time (T2), producing a second unipolar voltage waveform (64b) during the rise and fall of the magnetic field (71,…
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Excitor plate molecular alignment persists after pulse off-time to aid next pulse
1×
…25n) in the plate material, this orientation remains in electrical atomic alignment after pulse off-time (T2), aiding transference of voltage potential during the next pulse on-time (T1).…
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Step Charging Effect occurs when pulse off-time is less than on-time
1×
…nductance 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).…
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Electron Bounce Phenomenon: magnetic field coupling into the secondary coil creates copper ion charge separation without net electron flow
1×
…age potential (631) applied to choke coil 62; when the secondary coil de-energizes during pulse off-time (T2), electrons return to the copper ions and the opposite voltage potentials switch off, restoring net zero…
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Pulse off-time is adjusted to compensate for magnetic coupling field rise/fall to produce unipolar waveforms
1×
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 through 64n) that e…
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Blocking Diode (52) prevents Resonant Cavity from discharging during pulse off-time
1×
…sitive on each pulse cycle by preventing the Resonant Cavity (Cp) from discharging during pulse off-time (Fig 1-4, 60 of Fig 3-22), allowing developed Electrical Stress across the Capacitor Gap (Cp) to reach the fa…
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Pulsating opposite electrical stress across the Water Gap drives particle oscillation
1×
…gas atom particles of the water molecule to deflect from equilibrium and snap back during pulse off-time (T2).…
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Electron relaxation on pulse off-time causes spontaneous coherent emission
1×
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 (quiescent) state,…
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Pulse off-time is electronically tuned to compensate for magnetic field rise/fall
1×
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 pulse-frequency.…
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Absorbed laser energy deflects electrons during voltage-pulse Off-Time
1×
…ser Energy forces or deflects electrons away from the gas atom nucleus during the voltage-pulse Off-Time.…
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Pulse on-time and off-time are equal, forming duty pulse (39)
1×
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).…
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Gated pulse duty cycle formed from pulse train and pulse off-time
1×
Together pulse train (44a...44n) and pulse off-time (43) form the gated pulse duty cycle (45).…
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Calibration widens pulse train while narrowing pulse off-time, simultaneously
1×
During calibration, pulse train (44a...44n) becomes widened while pulse off-time width (43) becomes smaller, simultaneously.…
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Reverse calibration of circuit (80) produces opposite pulse shaping
1×
Conversely, opposite pulse shaping (narrower pulse train, wider pulse off-time) occurs when circuit (80) of Figure (3-5) is calibrated in reverse order.…
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Pulse off-time synchronized with transformer field collapse to produce unipolar pulse frequency
1×
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 unipolar puls…