Home » Audio » Thermionic Emissions » AC filaments
It's not that hard to calculate. [message #8898 is a reply to message #8892] Thu, 14 April 2005 19:04 Go to previous messageGo to previous message
Mark Kelly is currently offline  Mark Kelly
Messages: 4
Registered: May 2009
Esquire
As you said, only part of the filament goes negative WRT grid because the heater voltage is applied along the filament. The voltage drop along the filament can be taken to be linear so the sum of grid current potential will be the area under a triangular section "north" of the crossing point.

The actual grid current will vary according to k. SQRT (Eg / Ep) for Eg , Ep, then k .(Eg / Ep)^2 for Eg > Ep (logically at the inflection point Eg = Ep the current is k. Eg / Ep which is the convenient point at which to calculate k). Assuming you stay with grid voltage below plate voltage the grid current will be an integral over the square root function derived from the above.

The calculation is left to the reader as an exercise (don't you hate that in EE texts?)

 
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