Figure (7-3)
Coil Interaction
Also written Dynamic Voltage Potential
How it is written
- (7-3) 13×
Drawings 8
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(FI) of Figure (7-3b) · Instant Explosion of Water
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Figure (7-3) · Inductance (FL)
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(640) of Figure (7-3) · Capacitance (Cd)
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Figure (7-3) · Multi-layer Coil
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Distributed Capacitance (Cda xxx Cdn) of Figure (7-3) · Electron Bounce Phenomenon
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Captioned as this figure · WFC 426 - Illustrations
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"bifilar" wrapped coils (Figure 7-3) · Propagating Electrical Stress
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Captioned as this figure · VIC Switchover Circuit
On this figure 21
- 52 Secondary Coil
- 56 Resonant Charging Choke
- 62 Resonant Charging Chokes
- 68 Water Bath
- 580 VIC Coil Assembly
- 619 Voltage Pulse Burst Wave
- 621 Electromagnetic Coupling Field
- 640 Self-Inductance
- C1 Distributed Capacitance
- C2 Distributed Capacitance
- Cd Distributed Capacitance
- Coo —
- D1 Magnetic Flux Intensity
- Dl —
- FL1 Distributed Inductance
- FL2 Distributed Inductance
- T1 Duty Cycle of Pulse Train
- Vp Voltage Potential
- Vp1 Pickup Coils
- Vp2 Pickup Coils
- VpT Unipolar Voltage Pulse Train
Where it is named · 13
Inductance (FL) 2×
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... interacting Distributed Capacitance (Cda xxx Cdn) and Distributed Inductance (D1a xxx D1n) of Figure (7-3) of Inductor Coil (614) of (7-1) with "Electrical Charging Effect" brought on by the dielectric value of water bath (85/Re), as pictorially illustrated in (650) of Figure (7-4).
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Figure (7-3)
Capacitance (Cd) 4×
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Inductor (614) and Inductor (615) of Figure (7-1) as to (670) of Figure (7-6) is wound or coil-wrapped (see multi-layer equation Eq. 20) in such a manner as to increase the magnetic flux intensity (D1a xxx D1n) of Figure (7-3) as to (580) as to Figure (6-1) in reference to (710) of Figure (7-10) between the turns (618a xxx 618n) of coil-wrap (640).
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Figure (7-3) as to (580)
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The circular-spiral turns of wire (forming parallel electrical surfaces) is separated by an Insulated Dielectric Coating Material which forms a series of capacitors (Cda xxx Cdn) when magnetic flux-lines (619a xxx 619n) produce Electromagnetic Coupling Field (621) during pulse on-time (T1), as illustrated in (640) of Figure (7-3) as to (690) of Figure (7-8).
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(640) of Figure (7-3)
Multi-layer Coil 2×
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… ce of a multi-layer coil of rectangular cross section can be computed by below formula when optimizing maximum distributed capacitance (Cda xxx Coo) and distributed inductance (Dla xxx Dln) of Figure (7-3) to intensify Inductance Field Strength (FLa xxx FLn) to function as a voltage multiplier in switch-off conditions (612a xxx 612n), as illustrated in (710) of ~ . …
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Figure (7-3)
Electron Bounce Phenomenon 2×
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.... causing mutual inductance (μ1) (see equations Eq 28 thru Eq 30) to transform Distributed Capacitance (Cda xxx Cdn) of Figure (7-3) of each inductance coils (52 - 56 - 62) into a coherent Voltage Potential (Yo •..• Vn) equaling the sum of Voltage Potential (Vp) developed across each Pickup Coils (VpT + Vp1 + Vp2)
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Distributed Capacitance (Cda xxx Cdn) of Figure (7-3)
Propagating Electrical Stress 2×
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… el enhancement beyond applied voltage input since the "Distributed Capacitance" (C1a xxx C1n - C2a xxx C2n) / "Distributed Inductance" (FL1a xxx FL1n - FL2a xxx FL2n) of said "bifilar" wrapped coils (Figure 7-3) as to (990) of Figure (10-3) encourages the compounding effect (increasing magnetic field-strength during each pulsing cycle) of electromagnetic field-strength (Rp1a xxx Rp1n - Rp2a xxx Rp2n) (mutua …
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"bifilar" wrapped coils (Figure 7-3)
VIC Switchover Circuit 1×
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Automatically, the self-inductance coupling (619a xxx 619n) of Figure (7-3) prevents amp influxing [restricting current flow into and away from water bath (68) during each pulsing cycle T4A / T4B].