In the circuit shown in the figure (Figure 1) , the switch has been open for a l
ID: 1621608 • Letter: I
Question
In the circuit shown in the figure (Figure 1) , the switch has been open for a long time and is suddenly closed. Neither the battery nor the inductors have any appreciable resistance.
A) What do the ammeter read just after S is closed?
B) What do the voltmeter read just after S is closed?
C) What do the ammeter read after S has been closed a very long time?
D) What do the voltmeter read after S has been closed a very long time?
E) What do the ammeter read 0.110 ms after S is closed?
F) What do the voltmeter read 0.110 ms after S is closed?
500.0 (2 12.0 mH 0000 20.0 V 18.0 mH 25.0 (2 15.0 mH 0000Explanation / Answer
Part A)-
As we know that Voltmeter has high resistance and Ammeter has low resistance.
And inductor we be act as open circiut just after closing the switch. then-
As per circuit, the circuit is look like open circuit just after closing the switch then Ammeter will read the Zero reading. (i = 0)
Part B)-
As the voltmeter connected parallel in battery then-
V=20 v
Part C)-
After long time-
Inductor will be act like short circuit then 50 ohm and 25 ohm are in series then Req = 75 ohm.
i = V/Req
i= 20/75
i= 0.266 A
Part D)-
-25(i) +20-50(i) = V
V = 20 V ( Because Voltmeter is short circuited by the inductors so it will show the voltage approx equal to the battery)
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