For the AC circuit shown below, phase difference between emf and current is (π/4) radian as shown in the graph. If the impedance of the circuit is 1414 Ω, then the values of P and Q are

Question

For the AC circuit shown below, phase difference between emf and current is (π/4) radian as shown in the graph. If the impedance of the circuit is 1414 Ω, then the values of P and Q are (A) 1 k Ω , 10 μ F  (B) 1 k Ω , 1 μ F  (C) 1 k Ω , 10 mH (D) 1 k Ω , 1 mH

Tardigrade Admin · Accepted Answer

In the shown figure, current is ahead of voltage, so its a

RC

circuit, so

P

is a resistor and

Q

is a capacitor.
Now, in

RC

circuit,

Z = R^{2} + X_{C}^{2}

For simple solution,
Given

Z = 1414 = 1000 \times 1.414

= 10002

= 1000 1 + 1

= (1000)^{2} + (1000)^{2}

\Rightarrow X_{C} = 1000 R = 1000 Ω

Now,

X_{C} = \frac{1}{ω C}

\Rightarrow C = \frac{1}{ω X _{C}}

\Rightarrow C = \frac{1}{100 \times 1000} = 10 μ F

Q. For the AC circuit shown below, phase difference between emf and current is $\frac{π}{4}$ radian as shown in the graph. If the impedance of the circuit is $1414 Ω$ , then the values of $P$ and $Q$ are

$1 k Ω, 10 μ F$

$1 k Ω, 1 μ F$

$1 k Ω, 10 m H$

$1 k Ω, 1 m H$

Q. For the AC circuit shown below, phase difference between emf and current is 4π​ radian as shown in the graph. If the impedance of the circuit is 1414Ω, then the values of P and Q are

1kΩ,10μF

1kΩ,1μF

1kΩ,10mH

1kΩ,1mH

Q. For the AC circuit shown below, phase difference between emf and current is $\frac{π}{4}$ radian as shown in the graph. If the impedance of the circuit is $1414 Ω$ , then the values of $P$ and $Q$ are

$1 k Ω, 10 μ F$

$1 k Ω, 1 μ F$

$1 k Ω, 10 m H$

$1 k Ω, 1 m H$