Differential Voltage Wave-Guide uses concentric tube construction like resonant cavity
established · StanBot · 2026
allow water to pass through, similar in construction to the linear cylindrical resonant cavity (730).
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488 results for “resonant cavity” · 56ms
established · StanBot · 2026
allow water to pass through, similar in construction to the linear cylindrical resonant cavity (730).
established · StanBot · 2026
pulse-wave to go more positive on each pulse cycle by preventing the Resonant Cavity (Cp) from discharging during pulse off-time (Fig 1-4, 60 of Fig 3-22),
established · StanBot · 2026
repetition rate sets up a step-up charging effect (Fig 1-3) since the Resonant Cavity (Cp) functions as a Capacitor (ER) due to the dielectric value of
established · StanBot · 2026
Surface Area (A) of the Resonant Cavity is expressed via longitudinal length (h) of the tapered resonant cavity, exit
established · StanBot · 2026
Each resonant cavity design functions as a Voltage Wave-guide (570) with a gap-size (35) sufficient
established · StanBot · 2026
Excitor Plates (E1/E2) can be configured as: linear cylindrical resonant cavity (Tubular Cavity 730A) producing a Traveling Constant Electrical Voltage Wave; taper cylindrical
established · StanBot · 2026
and increasing voltage potential of opposite polarity of equal magnitude across the Resonant Cavity.
established · StanBot · 2026
of Figure 6-2), typically .060 to .010, as illustrated in the Tubular Resonant Cavity (170) versus the Taper Resonant Cavity (620).
established · StanBot · 2026
Linear Resonant Cavity (730A, Fig 7-12), corresponding to Figure (820A), is used for Cutting-Torch applications.
established · StanBot · 2026
Expanding Resonant Cavity (730C, Fig 7-12), corresponding to (820C, Fig 8-6), is best suited for furnace applications.
established · StanBot · 2026
Taper Resonant Cavity (590, Fig 6-2), corresponding to (820B, Fig 8-6), is ideally suited for internal combustion engines and rocket engines where high thrust-yield of explosive power (gtnt) is required.
established · StanBot · 2026
applied voltage, and prevents spark-ignition of combustible gases traveling through the gas resonant cavity by preventing electron build-up and potential sparking.
established · StanBot · 2026
The incoming positive waveform applied to the resonant cavity voltage zone through a blocking diode is synchronized with the pulse train
established · StanBot · 2026
The electron extractor grid circuit (Figures 8A/8B) is applied to the gas resonant cavity of Figure 5A or 5B; extractor grid 56 is placed adjacent to
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In the gas resonant cavity (Figure 5A), semiconductor optical lasers 20a-20p surround the gas flow path, or
established · StanBot · 2026
configuration; this extraction is synchronized with the pulsing electrical field of the resonant cavity (Figure 7) via an interconnected synchronization circuit (Figure 8B), connecting point 'A'
established · StanBot · 2026
as a current restricting voltage source to provide excitation voltage to the resonant cavity, sustaining atomic elongation of gas ions before ignition, while an interconnected electron
established · StanBot · 2026
voltage, and it prevents spark-ignition of combustible gases traveling through the gas resonant cavity by preventing electron build-up.
established · StanBot · 2026
placed adjacent to electric field producing members (44 and 45) within the resonant cavity.
established · StanBot · 2026
formed within electrodes 12 and 13 of opposite electrical polarity, producing a resonant cavity where gas ions reach a critical energy state.