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Hi Mick,
"Can you elaborate onthe E field and H0 Hd based on the capacitor to inductor size in a resonant circuit."
For high voltage keep the capacitance low and inductance high. For high current it is the opposite way around. At resonance the energy is oscillating between the capacitor and the inductor. By knowing the peak current of the inductor and its inductance the peak voltage of the capacitor can be calculated when also knowing its capacitance. That's because the same amount of energy oscillates between those two components.
Magnetic energy stored in an inductor of inductance L and current I:
Source: https://en.wikipedia.org/wiki/Magnetic_energy https://en.wikipedia.org/wiki/Magnetic_energy
Electric energy stored in a capacitor:
here C is the capacitance and V is the voltage. Source: https://en.wikipedia.org/wiki/Capacitor https://en.wikipedia.org/wiki/Capacitor
Knowing the inductance L and the capacitance C makes it possible to calculate the current if knowing the voltage or vice versa. The voltage and current are the peak values which determine the total energy oscillating between the inductor and the capacitor. The two formulas use different letters (E and W) for energy. The terms after the last equal sign of both formulas are just put equal to each other to solve for the voltage or the current when knowing the rest of the parameters.
Resonance happens at the frequency where the impedance of the capacitor equals the impedance of the inductor if the resistance (damping) of the circuit isn't too big: https://en.wikipedia.org/wiki/LC_circuit https://en.wikipedia.org/wiki/LC_circuit. This link applies for an ideal circuit. For a more realistic circuit look up RLC circuit.
You may have to study this area yourself. Conventional theory doesn't give much clue as to how to get free energy though. For that purpose different disciplines will have to be studied. Some such areas would be nonlinear physics and wave theory. Those two disciplines allow mixing non-coherent waves into coherent waves. That's a clue to harvesting free energy.
Regards
Ole
---In [email protected], <mkjekyll@...> wrote :
Ole,
Can you elaborate on the E field and H0 Hd based on the capacitor to inductor size in a resonant circuit.
In the case of a resonant field of an equal microhenries to microfarads and then a resonant circuit biased towards a larger capacitance or a larger inductor ratio?