pulse train
Also written pulse-train
As the sources put it
Pulse train (44a xxx 44n) is exactly the same as pulse train (41a xxx 41n) and its established pulse frequency (number of pulse cycles per unit of time) changes uniformly when pulse generator (70) of Figure (3-5) is calibrated and adjusted for system operations.
Where it appears · 103
Documents 29
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Gated Pulse Frequency generator (80)
6× · introduced
…42) to form gated pulse (45) which is, in turn, duplicated in succession to produce gated pulse train (46a xxx 46n) of Figure (3-17). Together pulse train (44a xxx 44n) and pulse off-time (43) forms gated pulse…
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Water Fuel Injector (Taper Resonant Cavity Chamber)
5× · introduced
…instant of time. Subsequent and repetitive formation of applied gated electrical voltage pulse-train (210a xxx 210n) of Figure (17) to continued in-flow of water fuel droplets (48a xxx 48n) not only sustains an…
-
Instant Explosion of Water
3× · introduced
…46a xxx 46n) on-time (T1a xxx T1n) ... allowing the formation of an gated pulse-frequency pulse-train (64a/64b - T3 - 64a/64b) when pulse off-time (T3) is greater than time-period (T2) ... input-signal (49a xxx…
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Cell Driver Circuit (90)
3× · introduced
In either case, the resultant or varied pulse train (47a xxx 47n) (calibration of 44a xxx 44n) becomes incoming gated pulse signal (48) of figure (3-5) to cell driver circuit (90) of Figure (3-5) which performs…
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RLC CIRCUIT
2× · introduced
…VC) across the capacitor is given by: During resonant interaction, the incoming unipolar pulse-train (h) of Figure (1-1) as to Figure (9B) produces an step-charging voltage-effect across Excitor-Array (ER of t)…
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LC Voltage
2× · introduced
…cross the capacitor is given by (Eq 7) During resonant interaction, the incoming unipolar pulse-train (H) of Figure (1-1) as to Figure (1-5) produces a step-charging voltage-effect across Excitor-Array (ER), as…
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Voltage Amplitude Switch-Off
1× · introduced
…er transfer from Primary Coil (26) to Secondary Coil (52) by keeping Voltage Amplitude of Pulse-train (49a xx 49n - T3 - 49a xxx 49n) constant.…
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Analog Voltage generator (40)
1× · introduced
…itude to produce a voltage level which is directly proportional to the physical change in pulse train (100 xxx 16n) of Figure (3-13). Figure (3-13) Figure (3-14) As pulse width (17ax) of signal (19) changes so d…
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Variable Pulse Frequency Generator (70)
1× · introduced
…re equally displaced to form duty pulse (39) which is duplicated in succession to produce pulse train (41) of Figure (3-16). Increasing the number of duty pulses (39a xxx 39n) up to pulse frequency range of 10Kh…
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ENERGY of the FUTURE - R&Z - Vol 2 No. 3, 1991
12×
…epetitive manner (16a xxxx 16n) of Fig- ure (12) and electrically transmits the resultant pulse-train signal (19) to Ana- log Voltage Circuit (40), as shown in Figure (4). In retrospect to engine performance (ga…
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Voltage Intensifier Circuit (60)
9×
…across primary coil (26) of Figure (3-22), Figure (3-15) Figure (3-18) variable amplitude pulse-train (51a xxx 51n) of Figure (3-19) is electromagnetically coupled (transformer action) to secondary coil (52) of…
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8-4 - State Space (Sp)
4×
…otal average of the number of applied Voltage-Pulses (Vp ave.) making up opposite Voltage Pulse Train (583/602a xxx 583/602n) in synchronous movement. Generally speaking, Arc Curve (Vac) changing/varying to Arc-…
-
8-5 - Energy Vectoring (Ev)
4×
…80C) of Figure (8-2) In the area of Voltage Sync-Wave (+/-) propagation, Unipolar Voltage Pulse Train (583/602a xxx 583/602) of (770A) of Figure (8-1), clipped Voltage Pulse Train (605/606a xxx 605/606n) of Figu…
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Resonant Action
3×
…tude is to remain constant while promoting Resonant Action during control-state, incoming pulse train (64a xxx 64n) is varied independent of voltage amplitude to attenuate voltage intensity (66/67) which, in tur…
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8-6 - VIC Voltage Sync-Pulse Circuit
3×
…609/611n) of Figure (8-2) ... all, forming Voltage Pulse Burst Wave (619) as to Unipolar Pulse-Train (780A), Crossover Unipolar Pulse-Train (780B), and Clipped Unipolar Pulse Train (780C) as to Traveling Voltag…
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ENERGY of the FUTURE - R&Z - Vol 1 No. 6, 1990
2×
…(Vc) across the capacitor is given by: During resonant interaction, the incoming unipolar pulse-train (h) of Figure (1-1) as to Figure (9B) produces a step-charging voltage-effect across Excitor-Array (ER), as i…
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Water Fuel Injector
2×
…re (3-23) (Memo WFC 422 DA) titled "WFC Hydrogen Gas Management System. As incoming gated pulse-train (46a xxx 46n) of Figure (3-17) is electronically "tuned" to adjust pulse off- time (T2) to compensate for "ri…
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8-3 - Electrical Voltage-Pulse Wave-Transmission
2×
…, allows positive Voltage Pulse-Wave (583) to be duplicated in succession to form Voltage Pulse Train (66 - 583a xxx 583n), as illustrated in (770) of Figure (8-1). Circuit Resistance Equations (Eq. 9): (770) of…
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Funneling Effect
1×
…. Attenuating variable voltage amplitude (72a xxx 72n) in conjunction with incoming gated pulse-train (210a xxx 210n), now, expands gated pulse width (76a xxx 76n) as voltage amplitudes (Vo xxx Vn) increases, fo…
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Quartz Tube Configuration & Operational Parameters
1×
…act Surface of the inside surface area of the Voltage Wave-Guides (66/67) allows Unipolar Pulse Train (583a/602a-583b/602b - 583n/602n) to travel the entire length of the Voltage Wave Guides that make up Voltage…
-
Figure 9B & 9BB - Applied Voltage To Plates
1×
…B. Variable Amplitude unipolar-pulse voltage frequency superimposed onto a 50% duty-cycle pulse-train."…
-
VIC Switchover Circuit
1×
…56 - 958/62) when the primary coil (957/56) is electrically energized by incoming voltage pulse train (T4a xxx T4n), as so illustrated in (970) of Figure (10-1). (970) of Figure (10-1) Automatically, the self-in…
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Acceleration Control Circuit (30)
1×
…repetitive manner (16a xxx 16n) of Figure (3-13) and electrically transmits the resultant pulse-train signal (19) to Analog Voltage Circuit (40), as shown in Figure (3-5). Figure (3-13) Analog Voltage Circuit (4…
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Voltage to Amp Differential Ratio
1×
…mulation (770B) of Figure (8-1) is simply produced when Programmable Variable Pulse-Width Pulse-Train Waveform (49a xxx 49n) is allowed to be electrically transmitted through and beyond Resonant Charging Chokes…
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Electron Bounce Phenomenon
1×
…56 - 62) simultaneously during each and every pulse on-time (T1a xxx T1n) as programmable pulse-train (49a xxx 49n T3 - 49a xxx 49n) is adjusted to "Tune - in" to the dielectric property of Water (Re) .... causi…
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Gas Processor
1×
…amplitude (Va xxx Vn), applied voltage pulse frequency (65a xxx 65n), and applied current pulse train (126a xxx 126n) are design variable to "tune-in" to the resonant properties of gas atom (101) while stimulati…
-
Laser Distributor
1×
…ivates Pulse Shaping Generator (440) of Figure (3-4) to produce a constant 50% Duty-cycle Pulse-Train (see Figure 3-16 once again) to Analog voltage Generator (40) of Hydrogen Gas Management System (200) of Figu…
-
Electrical Polarization process
1×
…creases in voltage amplitude from several millivolts to several hundred volts during each pulse train (65a xxx 65n) which, in application, causes water molecule (210) of Figure (3-27) charged atoms (76/77) to el…
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In-Line Circuit Components
1×
…ntly produced from water (85) is determined by: Voltage Amplitude ( xxx Vn) Duty Cycle of Pulse Train (T1 - T2a xxx T1 – T2n) Gated Pulse-Frequency of applied Voltage Potential (49a xxxx 49n - T3 - 49a xxx 49n)…
Patents 6
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Process And Apparatus For The Production Of Fuel Gas And The Enhanced Release Of Thermal Energy From Such Gas
19×
…fuel cell assembly, gas output is varied. By varying the pulse shape and/or amplitude or pulse train sequence of the initial pulsing wave source, final gas output is varied. Attenuation of the voltage field fre…
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Process & Apparatus For The Production Of Fuel Gas & The Enhanced Release Of Thermal Energy From Such Gas
18×
…fuel cell assembly, gas output is varied. By varying the pulse shape and/or amplitude or pulse train sequence of the initial pulsing wave source, final gas output is varied. Attenuation of the voltage field fre…
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Controlled Process For The Production Of Thermal Energy From Gases And Apparatus Useful Therefore
13×
…——tatalclolelrichutrlsti iit i talsiclolelriclalrtui jit) pee SECTION AA: APPLIED VOLTAGE PULSE TRAIN Va -— = 45a Asn PREDETERMINED n LIGHT WAVE ABSORBTION RATE SECTION BB: APPLIED LASER OR PHOTON PULSE TRAIN NE…
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Method For The Production Of A Fuel Gas
7×
…NS ath DOSS SSSssssqsy DISASSAASS KAMSSASSSSY COVALENT BREAKUP LIBERATED ATOMS REPETITIVE PULSE TRAIN 3F FUEL CELL GASES ON DEMAND RESONANCE Page 5 METHOD FOR THE PRODUCTION OF A FUEL GAS Related Application Thi…
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Method For The Production Of A Fuel Gas
6×
…fuel cell assembly, gas output is varied. By varying the pulse shape and/or amplitude or pulse train sequence of the initial pulsing wave source, final gas output is varied. Attenuation of the voltage field fre…
-
Controlled Process For The Production Of Thermal Energy From Gases And Apparatus Useful Therefore
5×
…utput leads to final recombination via the field. The triggering application of a voltage pulse train (A) is also shown in FIG. 5, shown synchronizing pulses in gas mixture generation, whereby FIG. 4 details the…
Bench findings 68
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Pulse-trains 53 and 54 can differ in frequency/amplitude and serve distinct functions
4×
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 demand, wh…
-
Blocking diodes and gated pulse trains synchronize Electron Extraction with Hydrogen Fracturing
4×
…sonant Cavity's positive voltage zone (45) through blocking diode (14), synchronized with pulse train (62) via alternate gate circuit (190): when pulse train (61) is gated ON, pulse train (62) is OFF, and vice v…
-
Gas production can be controlled by varying pulse-train independent of, or together with, voltage amplitude
3×
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 production; alter…
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Alternating pulse train (ON/OFF) circuit uses a blocking diode and resistance wire
3×
When one pulse train is switched 'ON', the other pulse train is switched 'OFF'; a blocking diode directs electron flow to the electrical load while a resistance wire prevents voltage leakage during the pulse tra…
-
Blocking diode and resistive wire manage electron flow and prevent voltage leakage
3×
…electron flow to the electrical load while resistive wire prevents voltage leakage during pulse-train 'ON' time; the incoming positive waveform is synchronized with the pulse train via an alternate gate circuit,…
-
Gated pulse-frequency pulse-train forms when pulse off-time T3 exceeds time period T2
3×
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…
-
FIG. 9 circuit uses external electromagnetic pulse field via primary coil and switching diode
2×
…rived from primary coil A being energized, to traverse coil windings D and E via incoming pulse train Ha...Hn through switching diode G; because F and the incoming pulse train are sequentially the same, resonant…
-
Figure 9 circuit enhances voltage across resonant charging choke coils via external pulsing field
2×
…, from energized primary coil A, to traverse coil windings D and E (energized by incoming pulse train Ha...Hn through switching diode G); the external field and incoming pulse train being synchronized allows res…
-
Electron extraction pulse train is gated alternately with the resonant cavity pulse train
2×
…ied to the resonant cavity voltage zone through a blocking diode is synchronized with the pulse train applied to the gas resonant cavity via an alternate gate circuit: as one pulse train gates 'ON,' the other sw…
-
Crossover Unipolar Pulse Train used for higher-magnitude continuous stress vs Planar Pulse Train
2×
The Crossover Unipolar Pulse Train (Figure 780B) is used when particle oscillation of the water molecule atoms is to be continually electrically stressed under changing conditions of higher magnitude (Compressin…
-
Pulse train (44a...44n) is identical to pulse train (41a...41n) and frequency varies with pulse generator calibration
2×
Pulse train (44a...44n) is exactly the same as pulse train (41a...41n), and its established pulse frequency (number of pulse cycles per unit time) changes uniformly when pulse generator (70) of Figure (3-5) is c…
-
Secondary Coil has more turns than input, stepping voltage up above incoming pulse-train
2×
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 than the inc…
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Analog voltage pulse train applied to excitor-plates via Step Charging Effect
2×
A unipolar Voltage Pulse Train is applied to the voltage intensifier assembly, forming an analog voltage pulse train that increases linearly from a low energy state to a high energy state across the excitor-plat…
-
Gas output is controllable via pulse voltage, shape, amplitude, and ON/OFF attenuation
1×
…er fuel cell is varied by adjusting the applied pulse voltage, pulse shape, amplitude, or pulse train sequence of the initial pulsing wave source, as well as by attenuating the voltage field frequency via ON/OFF…
-
Energy yield controlled by varying applied voltage or pulse-train
1×
…energy yield of the thermal-lens assembly is controlled by varying the applied voltage or pulse-train, since the assembly is self-adjusting to the flow-rate of the ionized and primed gases.…
-
Repetitive voltage pulse train incrementally elongates gas ions during electron removal
1×
Repetitive application of a voltage pulse train (A through J of FIG. 6A) incrementally achieves the critical state of gas ions; as gas atoms/ions elongate during electron removal, electromagnetic wave energy of…
-
Gas output is controllable by varying pulse voltage, shape, amplitude, and train sequence
1×
…fuel cell is varied by attenuating the applied pulse voltage, pulse shape, amplitude, or pulse train sequence, including turning the voltage field ON and OFF.…
-
Water capacitor charges to about 1000 volts and more during step charging
1×
…es to about 1000 volts and more, causing the water molecule to begin elongating; when the pulse train is switched off, voltage is maintained at the level of charge the molecules retained.…
-
Pulse-train count is varied in relation to voltage amplitude and gated pulse rate
1×
The number of voltage pulses per gated pulse (pulse-train) is varied in direct relationship to both the variable voltage amplitude and the variable gated pulse rate, providing another control axis for gas output…
-
Energy yield of thermal lens is controlled by applied voltage/pulse-train
1×
…ield of the optical thermal lens assembly is controlled by varying the applied voltage or pulse-train, since the assembly is self-adjusting to the flow-rate of the ionized and primed gases.…
-
Electron extractor circuit routes liberated electrons to an electrical load as usable energy
1×
…de directs electron flow to the load while resistive wire prevents voltage leakage during pulse-train 'ON' time.…
-
Power load to the exciter-array is sequentially/variably switched in coordination with voltage functions
1×
…ally switched (variable switching) while performing the voltage amplitude, frequency, and pulse-train functions, including in direct relationship to moving voltage zones.…
-
Circuit Resistance Equations (Eq. 9) govern the inactivated electrical state of the VIC Matrix
1×
…ow the positive Voltage Pulse-Wave (583) to be duplicated in succession to form a Voltage Pulse Train (66, 583a...583n) as shown in Figure 8-1 (770).…
-
Negative Voltage Pulse Train forms via Electron Clustering Effect, equal in magnitude to positive train
1×
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 to the Pos…
-
Equalizing Voltage Pulse-Scan is set by average number of pulses in a pulse train
1×
…e total average number of applied Voltage-Pulses (Vp ave.) making up the opposite Voltage Pulse Train in synchronous movement.…
-
VIC Diagram AA topology: gated pulse train through blocking diode into bifilar chokes forming resonant cavity capacitor
1×
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 (62, seconda…
-
Clipped Unipolar Pulse Train increases atomic dwell-time to raise Atomic Energy Level before Snapping-Action
1×
The Clipped Unipolar Pulse Train (Figure 780C) is used to encourage further increase in atomic dwell-time, raising the Atomic Energy Level (AEI) of the Water Atoms to a higher energy-state before Snapping-Action…
-
Thermal Explosive Energy-Yield from water depends on multiple stacked parameters
1×
…instantly produced from water (85) is determined by Voltage Amplitude (Vn), Duty Cycle of Pulse Train (T1-T2a...T1-T2n), Gated Pulse-Frequency of applied Voltage Potential (49a-49n, T3, 49a-49n), Inductor (L1/L2…
-
Mutual inductance couples primary/secondary transformer coils to build tunable voltage potential
1×
…(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), causing mutual inductance to transform distributed capacitanc…
-
Switching Secondary Coil-Array maximizes power transfer while keeping pulse-train voltage constant
1×
…fer from Primary Coil (26) to Secondary Coil (52) by keeping the Voltage Amplitude of the Pulse-train (49a–49n, T3, 49a–49n) constant.…
-
Multiple Resonant Charging Choke Stages are sequentially connected and magnetically coupled
1×
…oducing the opposite-polarity Voltage Wave burst from a Programmable Variable Pulse-Width Pulse-Train Waveform.…
-
Voltage Wave-Guides carry unipolar pulse train via skin-effect conduction zone
1×
…surface of the inside surface area of the Voltage Wave-Guides (66/67) allows the Unipolar Pulse Train to travel the entire length of the Voltage Wave-Guides forming Voltage Zones (66/E9–67/E10).…
-
Mutual inductance coupling between bifilar coils forms simultaneous +/- voltage fields
1×
…wrapped coils (957/56-958/62) when the primary coil is energized by the incoming voltage pulse train (T4a...T4n).…
-
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-frequen…
-
Resonant choke outputs calibrated gated unipolar pulse train to conical surfaces
1×
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 is directed…
-
Unipolar pulse-train produces step-charging voltage effect across Excitor-Array
1×
During resonant interaction, the incoming unipolar pulse-train (H) shown in Figure (1-1) and Figure (1-5) produces a step-charging voltage effect across the Excitor-Array (ER), as illustrated in Figures (1-3) an…
-
Excitor-Array voltage can exceed 20,000 volts via circuit AA interaction
1×
…d 20,000 volts due to circuit (AA) interaction, and this level is directly related to the pulse-train (H) variable amplitude input.…
-
Circuit (30) transmits repetitive pulse-train to Analog Voltage Circuit (40)
1×
…repetitive manner (16a xxx 16n) of Figure (3-13) and electrically transmits the resultant pulse-train signal (19) to Analog Voltage Circuit (40), as shown in Figure (3-5).…
-
Analog signal varies continuously in time and amplitude proportional to pulse train changes
1×
…amplitude, producing a voltage level directly proportional to the physical change in the pulse train (100...16n).…
-
Pulse on-time and off-time are equal, forming duty pulse (39)
1×
…e equally displaced to form duty pulse (39), which is duplicated in succession to produce pulse train (41) shown in Figure (3-16).…
-
Gated Pulse Circuit (80) switches clock signal on/off to form gated pulse
1×
…signal (42) to form gated pulse (45), which is duplicated in succession to produce gated pulse train (46a...46n) of Figure (3-17).…
-
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).…
-
Optical Thermal Lens superheats combustible gas ions beyond 3,000°F for atomic triggering on demand
1×
…intain gas pressure; the atomic energy-yield is controlled by varying the applied voltage pulse-train, with the thermal-lens assembly self-adjusting to gas flow-rate.…
-
Newly formed gated duty pulse (45) is proportional to physical change in pulse train (44a...44n) during calibration
1×
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.…
-
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.…
-
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.…
-
Primary coil pulse waveform duplicates the incoming gated pulse train
1×
…erimposed onto primary coil (26) in Figure 3-18 is an exact duplicate of the proportional pulse train (47a...47n) driving the cell driver circuit.…
-
Pulse train (47) and primary coil pulse (49) are electrically isolated
1×
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.…
-
Switching diode blocks shorting and acts as electronic switch during pulse off-time
1×
…off-time, allowing the magnetic fields of inductor coils (56/57) to collapse and form the pulse train (64a-64n).…
-
Excitor-array voltage can exceed 20,000 volts via VIC circuit interaction
1×
…due to circuit (60) interaction, directly related to the variable amplitude input of the pulse train (64a-64n).…
-
Pulsing core aids amp restriction while VIC is tuned to water bath resonant frequency
1×
…ids 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 resonant frequency properties of t…
-
Pulse amplitude adjustable from 1 to 12 volts via battery supply and Laser Accelerator circuit
1×
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 the Hydrogen…
-
Step-charging voltage wave rises from millivolts to several hundred volts per pulse train
1×
…(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 elongate and increase the distance between…
-
Rotating light-gate circuit (430) activates Pulse Shaping Generator to produce a 50% duty-cycle pulse train
1×
…ivates Pulse Shaping Generator (440) of Figure (3-4) to produce a constant 50% Duty-cycle Pulse-Train (Figure 3-16) fed to Analog Voltage Generator (40) of the Hydrogen Gas Management System (200) of Figure (3-1…
-
Water's dielectric constant (78.54) becomes part of the resonant electronic circuit
1×
Electron restriction while varying voltage intensity is achieved by tuning the incoming pulse-train to the Dielectric Properties of Water (47), whose dielectric value of 78.54 becomes an integral part of Electro…
-
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 p…
-
Attenuated variable voltage amplitude expands gated pulse width, forming step-up voltage waveform
1×
Attenuating variable voltage amplitude (72a-72n) in conjunction with the incoming gated pulse-train (210a-210n) expands gated pulse width (76a-76n) as voltage amplitudes increase, forming a step-up voltage wavef…
-
Unipolar pulse-train produces step-charging voltage across Excitor-Array
1×
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).…
-
Excitor-Array voltage can exceed 20,000 volts
1×
…circuit (AA) interaction, and is directly related to the variable amplitude of the input pulse-train (h).…
-
Variable gate circuit alternately triggers two opto-couplers to form dual waveforms
1×
…m (f)-(g), terminating waveform (d)-(e). Repeating this alternation produces dual-voltage pulse-train (51).…
-
Duty-pulse train adjustable from 1 to 100 duty-pulses via gate circuit
1×
…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 eleventh steps to voltage attenuation; this reoccurring…
-
Gated pulse on/off time adjustable 1% to 100% duty time
1×
…changed to concentrate or expand applied voltages to the resonant cavity (44); the gated pulse train's on-time (53) versus off-time (54) is adjustable from 1% to 100% duty time. As on-time increases, off-time p…
-
Duty-cycle pulse rate varied from 1 to 100 duty-pulses per second to restrict amp flow
1×
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 restrict amp…
-
Variable gate circuit sets duty cycle from 1% to 100%
1×
…y 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, with duty-pulse rate variable from 1…
-
Bypass coil (9) passes voltage via electromagnetic induction while restricting amp flow
1×
…equency 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 magnetic field through t…
-
Diode (14) isolates fuel cell from high-voltage drive during transient startup
1×
…charge during each high positive voltage pulse and preventing it from discharging during pulse train off-times.…
-
Rotary pulse-voltage frequency generator produces variable AC/DC pulse train via armature and pickup coils
1×
…g electromagnetic fields (23) rotated through pickup coils (24), generating a variable AC pulse train; bounce network (25) converts this to variable DC pulses, then gated by circuit (4)(5)(6) to duplicate wavefo…
-
Pulsing the electromagnet input voltage reduces output voltage without changing output frequency
1×
…shortening the duty cycle (short pulse duration relative to the constant-frequency output pulse train), the output voltage magnitude is drastically reduced while the output frequency remains constant; a constant…