established VIC
Inductor L1 and L2 are physically identical and behave identically
Inductor (L1) acts and performs in like manner to Inductor (L2) since both Inductor (L1/L2) are physically the same size and shape.
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 VIC
Inductor (L1) acts and performs in like manner to Inductor (L2) since both Inductor (L1/L2) are physically the same size and shape.
established VIC
Inductance Reactance determines the voltage swing from the highest voltage level (Vn) to the volts switch-off point (Vff), and establishes Impedance (FL) which minimizes heat loss of electrical input...
established VIC
Inductance 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).
established VIC
Inductance Reactance doubles the input frequency (64a * 64b) when a 50% Duty Cycle Pulse (T1 = T2) is inputted, while also increasing applied voltage amplitude (Vo-Vn).
established VIC
Inductance Reactance directly determines Stored Energy (Wa), which is controlled by the input Voltage Potential as attenuated or varied via Voltage Amplitude (Vo, Va, Vb-Vf, Vg-Vn, per Figure 7-13) an...
established VIC
Stored energy (Wa) in Joules (Watt-seconds) is a function of Inductance (L) in Henries and current (I) in amperes, per the stated energy relationship for Inductance Reactance.
established VIC
Lengthening the Inductor (L1/L2) lengths applies an even higher Voltage Potential (66/67) across the Resonant Capacitor (140-170, labeled ER), because Inductance Reactance stores energy.
established VIC
The electromagnetic coupling fields encourage the Voltage Inducement Process across the VIC Impedance Network Circuit without amp 'influxing' (i.e., inhibiting amp flow) between the Positive Voltage P...
established VIC
The Electron Inhibiting Effect combined with the Voltage Enhancement Effect is achieved because stainless steel 430F/FR wire-material is electromagnetically inductive to incoming flux lines without th...
established VIC
At elevated voltage amplitudes, the primary electromagnetic coupling field (Rp), transmitted via the Inductance Pulsing-Core through the VIC Coil Assembly, passes through both Inductors L1 and L2 simu...
established VIC
The blocking action of L2's field prevents and inhibits electron flow from passing through or arcing over the capacitor water-gap (Cp); this is termed the 'Electron Inhibiting Effect' (631).
established VIC
Inductance Field L1-FL1 performs the 'Capacitance Charging Effect' (628), while at the same time Inductor Field L2-FL2 restricts electron movement through the VIC Impedance Network Circuit by locking...
established VIC
Adjusting the programmable pulse-waveform input signal frequency 'tunes-in' to the dielectric property (Re) of water, reducing amp flow to a minimum while allowing voltage potential to rise toward inf...
established VIC
Both Inductors L1 and L2 are bifilar wound in equal length so their electromagnetic field intensities are equal (FL1 = FL2), promoting the 'Electron Bounce' phenomenon.
established VIC
Inductors L1-L2 (Figure 7-6), placed on opposite sides of the water-capacitor ER, act as Resonant Charging Chokes (614/615) and together form the Resonant Voltage Effect Circuit (670).
established VIC
Inductance Reactance occurs when resistance (Rs), capacitance (Cd), and Inductance (FL) interact during D.C. Pulsing, increasing voltage across the water-capacitor (ER) beyond the applied Voltage Pote...
established VIC
All dielectric coatings on the VIC wire have an effective 3KV per mil dielectric value and are formulated to endure the automotive temperature range from -40°C to 155°C.
established VIC
Both magnet wire sizes (622/623), the Primary and Secondary Pickup Coils, use solderable Nysol (Polyurethane Nylon Jacket) insulation enamel coating as an electrical shield-material.
established VIC
The stainless steel resonant charging choke wire (614/615) is coated with the 'Pyre-ML' trade name 'Himol' polymer coating-material to impart thermal and mechanical resistance.
established VIC
The Secondary Pickup Coil (623) of the VIC uses 35 AWG (.007 in) copper wire equal to 13K ohms per pound weight.
established VIC
The Primary Coil (622) of the VIC uses 22 AWG (.028 in) copper wire equal to 5.1933 ohms per pound weight.
established VIC
Resonant Charging Chokes (614/615) are made of 430F/FR 36 AWG (.006 in) stainless steel (s/s) wire, which equals 60 micro ohms per centimeter.
established VIC
The series resistance value (Rs) of the VIC choke/coil windings is determined by the composition of the wire material in terms of its ohmic value (electrical resistivity) per given length and diameter...
established VIC
The circular-spiral turns of wire in the VIC choke, forming parallel electrical surfaces, are separated by an Insulated Dielectric Coating Material which forms a series of capacitors (Cda-Cdn) when ma...
established VIC
Inductors (614) and (615) of the VIC are wound or coil-wrapped, per the multi-layer equation (Eq. 20), to increase magnetic flux intensity between the turns (618a-618n) of the coil-wrap (640).
established WFC
The Resonant Cavity forms capacitor (ER) when the dielectric liquid of water (85) is placed or injected between electrical conducting plates (E9/E10) while applied voltage Potential of opposite polari...
established WFC
The resultant Surface Polarity Effect (skin effect) (624) supplies a residual atomic Electrical Charge Field that helps maintain molecular alignment of water atoms (617) during pulsing operations.
established WFC
After the applied voltage forms molecular electrical orientation (625a-625n) in the plate material, this orientation remains in electrical atomic alignment after pulse off-time (T2), aiding transferen...
established WFC
The stainless steel (s/s) T304 material forming Voltage Zones (E9/E10) undergoes particle alignment of its atomic structure when exposed to applied electrical voltage fields (66/67), producing molecul...
established WFC
Applied voltage Potential (66/67) causes and sets up Molecular Polarization Alignment (617) via electrical molecular rotation, positioning each water Molecule (85a-85n) under opposite electrical attra...