A 3600-pF air-gap capacitor is connected to a 30-V battery. If a piece of mica (K=...
A 3600-pF air-gap capacitor is connected to a 30-V battery.
If a piece of mica (K= 7) is placed between the plates, how much charge will flow from the battery?
**I've tried this so many ways and I keep getting the wrong answer! Thanks for the help!
Homework Answers
Given that
voltage v= 30v
capacitance c=3600PF = 3600*10^-12 F
we know that
Q=CV
initial charge Q1= (3600*10^-12)(30) C
Q1= 1.08*10^-7 C
Final charge when piece of mica placed between plates
Q2= 7*(3600*10^-12)(30) C
Q2=7.56*10^-7
so the charge flow from battery will be
Q2-Q1 = (7.56*10^-7)-(1.08*10^-7)
= 0.000000648 C
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