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Re: Discharge impedance questions. (RG-8, matching)
> >Hi Terry,
> >
> >
> >Thanks for the preliminary info!
> >
> >
> >I'm afraid I don't understand the 'through about 10 feet of RG-8' part.
> >Remember normally I speak dutch, so for us Europeans it's a little bit
> >harder to understand the 'Tesla language'.
>
> The generator is connected to the primary coil through a 10 foot long
> length of type RG-8 coaxial cable. A common 50 ohm transmitter cable
used
> for Ham radio and such. Since I could tune the coil to almost no
reflected
> power, this cable should not have had any effect on anything.
The fact that you got a match was achieved at the generator end doesn't
mean the load is matched at the other end. A match at one end only implies
a match at the other end if the cable is a multiple of a half wavelength.
Otherwise, you'll want to use the formula:
Zin = Z0 * (Zload*cosh(gamma) + Z0*sinh(gamma))/
(Zload*sinh(gamma)+Z0*cosh(gamma))
gamma is the complex propagation constant. gamma = alpha + j beta where:
alpha is attenuation in nepers (1 neper = 8.688 dB)
beta is length in radians
(http://home.earthlink-dot-net/~jimlux/radio/tleqn.htm for more)
Fortunately, your data is probably reasonably valid. 10 feet is a quarter
wave at (18.47 meters = 16.23 MHz)... you're so much lower in frequency,
that the cable just acts like some capacitance in parallel (160 pF I
think.. 16 pF/foot for RG-8? maybe 30 pF? Don't have the chart in front
of me).