A capacitor of capacitance 5 μ F is connected as shown in the figure. The internal resistance of the cell is 0.5 Ω The amount of charge on the capacitor plates is

Question

A capacitor of capacitance 5 μ F is connected as shown in the figure. The internal resistance of the cell is 0.5 Ω The amount of charge on the capacitor plates is (A)  80 μ C  (B)  40 μ C  (C)  20 μ C  (D)  10 μ C

Tardigrade Admin · Accepted Answer

In steady state, there will be no current in the capacitor branch
Net resistance of the circuit

R = 1 + 1 + 0.5 = 2.5Ω

Current drawn from the cell.

i = \frac{V}{R} = \frac{2.5}{2.5} = 1 A

PotentiaI drop across two parallel branches

V = E - i r = 2.5 - 1 \times 0.5

= 2.5 - 0.5

= 2.0 V

So, charge on the capacitor plates

q = C V = 5 \times 2

= 10 μ C

Q. A capacitor of capacitance $5 μ F$ is connected as shown in the figure. The internal resistance of the cell is $0.5Ω$ The amount of charge on the capacitor plates is

$80 μ C$

$40 μ C$

$20 μ C$

$10 μ C$

Q. A capacitor of capacitance 5μF is connected as shown in the figure. The internal resistance of the cell is 0.5Ω The amount of charge on the capacitor plates is

80μC

40μC

20μC

10μC

In steady state, there will be no current in the capacitor branch Net resistance of the circuit R=1+1+0.5=2.5Ω Current drawn from the cell. i=RV​=2.52.5​=1A PotentiaI drop across two parallel branches V=E−ir=2.5−1×0.5 =2.5−0.5 =2.0V So, charge on the capacitor plates q=CV=5×2 =10μC

Q. A capacitor of capacitance $5 μ F$ is connected as shown in the figure. The internal resistance of the cell is $0.5Ω$ The amount of charge on the capacitor plates is

$80 μ C$

$40 μ C$

$20 μ C$

$10 μ C$