01. A.C. Voltage Applied to Inductance & Capacitor
Alternating Current

155053 An L-R circuit has a cell of emf. $E$, which is switched $O N$ a time $t=0$. The current in the circuit after a long time will be

1 zero
2 $\frac{E}{R}$
3 $\frac{\mathrm{E}}{\mathrm{L}}$
4 $\frac{E}{\sqrt{L^{2}+R^{2}}}$
Alternating Current

155089 In a $R-L$ circuit reactance offered by the coil is

1 $\omega \mathrm{L}$
2 $\frac{1}{\omega \mathrm{L}}$
3 $\omega \mathrm{RL}$
4 $\omega^{2} \mathrm{~L}$
Alternating Current

155054 An ac voltage of $100 \mathrm{~V}, \frac{500}{\pi} \mathrm{Hz}$ is connected across a $20 \Omega$ resistor and $15 \mathrm{mH}$ inductor in series. Then the impedance of the circuit is

1 $25 \Omega$
2 $40 \Omega$
3 $5 \Omega$
4 $35 \Omega$
Alternating Current

155057 A charged capacitor $\mathrm{C}=30 \mu \mathrm{F}$ is connected to an inductor $L=27 \mathrm{mH}$. The angular frequency of their oscillations is-

1 $9.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
2 $3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
3 $1.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
4 $0.3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
Alternating Current

155058 A capacitor ' $C$ ' connected across a D.C. source, the reactance of capacitor will be

1 Zero
2 High
3 Low
4 Infinite
Alternating Current

155053 An L-R circuit has a cell of emf. $E$, which is switched $O N$ a time $t=0$. The current in the circuit after a long time will be

1 zero
2 $\frac{E}{R}$
3 $\frac{\mathrm{E}}{\mathrm{L}}$
4 $\frac{E}{\sqrt{L^{2}+R^{2}}}$
Alternating Current

155089 In a $R-L$ circuit reactance offered by the coil is

1 $\omega \mathrm{L}$
2 $\frac{1}{\omega \mathrm{L}}$
3 $\omega \mathrm{RL}$
4 $\omega^{2} \mathrm{~L}$
Alternating Current

155054 An ac voltage of $100 \mathrm{~V}, \frac{500}{\pi} \mathrm{Hz}$ is connected across a $20 \Omega$ resistor and $15 \mathrm{mH}$ inductor in series. Then the impedance of the circuit is

1 $25 \Omega$
2 $40 \Omega$
3 $5 \Omega$
4 $35 \Omega$
Alternating Current

155057 A charged capacitor $\mathrm{C}=30 \mu \mathrm{F}$ is connected to an inductor $L=27 \mathrm{mH}$. The angular frequency of their oscillations is-

1 $9.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
2 $3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
3 $1.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
4 $0.3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
Alternating Current

155058 A capacitor ' $C$ ' connected across a D.C. source, the reactance of capacitor will be

1 Zero
2 High
3 Low
4 Infinite
Alternating Current

155053 An L-R circuit has a cell of emf. $E$, which is switched $O N$ a time $t=0$. The current in the circuit after a long time will be

1 zero
2 $\frac{E}{R}$
3 $\frac{\mathrm{E}}{\mathrm{L}}$
4 $\frac{E}{\sqrt{L^{2}+R^{2}}}$
Alternating Current

155089 In a $R-L$ circuit reactance offered by the coil is

1 $\omega \mathrm{L}$
2 $\frac{1}{\omega \mathrm{L}}$
3 $\omega \mathrm{RL}$
4 $\omega^{2} \mathrm{~L}$
Alternating Current

155054 An ac voltage of $100 \mathrm{~V}, \frac{500}{\pi} \mathrm{Hz}$ is connected across a $20 \Omega$ resistor and $15 \mathrm{mH}$ inductor in series. Then the impedance of the circuit is

1 $25 \Omega$
2 $40 \Omega$
3 $5 \Omega$
4 $35 \Omega$
Alternating Current

155057 A charged capacitor $\mathrm{C}=30 \mu \mathrm{F}$ is connected to an inductor $L=27 \mathrm{mH}$. The angular frequency of their oscillations is-

1 $9.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
2 $3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
3 $1.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
4 $0.3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
Alternating Current

155058 A capacitor ' $C$ ' connected across a D.C. source, the reactance of capacitor will be

1 Zero
2 High
3 Low
4 Infinite
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Alternating Current

155053 An L-R circuit has a cell of emf. $E$, which is switched $O N$ a time $t=0$. The current in the circuit after a long time will be

1 zero
2 $\frac{E}{R}$
3 $\frac{\mathrm{E}}{\mathrm{L}}$
4 $\frac{E}{\sqrt{L^{2}+R^{2}}}$
Alternating Current

155089 In a $R-L$ circuit reactance offered by the coil is

1 $\omega \mathrm{L}$
2 $\frac{1}{\omega \mathrm{L}}$
3 $\omega \mathrm{RL}$
4 $\omega^{2} \mathrm{~L}$
Alternating Current

155054 An ac voltage of $100 \mathrm{~V}, \frac{500}{\pi} \mathrm{Hz}$ is connected across a $20 \Omega$ resistor and $15 \mathrm{mH}$ inductor in series. Then the impedance of the circuit is

1 $25 \Omega$
2 $40 \Omega$
3 $5 \Omega$
4 $35 \Omega$
Alternating Current

155057 A charged capacitor $\mathrm{C}=30 \mu \mathrm{F}$ is connected to an inductor $L=27 \mathrm{mH}$. The angular frequency of their oscillations is-

1 $9.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
2 $3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
3 $1.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
4 $0.3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
Alternating Current

155058 A capacitor ' $C$ ' connected across a D.C. source, the reactance of capacitor will be

1 Zero
2 High
3 Low
4 Infinite
Alternating Current

155053 An L-R circuit has a cell of emf. $E$, which is switched $O N$ a time $t=0$. The current in the circuit after a long time will be

1 zero
2 $\frac{E}{R}$
3 $\frac{\mathrm{E}}{\mathrm{L}}$
4 $\frac{E}{\sqrt{L^{2}+R^{2}}}$
Alternating Current

155089 In a $R-L$ circuit reactance offered by the coil is

1 $\omega \mathrm{L}$
2 $\frac{1}{\omega \mathrm{L}}$
3 $\omega \mathrm{RL}$
4 $\omega^{2} \mathrm{~L}$
Alternating Current

155054 An ac voltage of $100 \mathrm{~V}, \frac{500}{\pi} \mathrm{Hz}$ is connected across a $20 \Omega$ resistor and $15 \mathrm{mH}$ inductor in series. Then the impedance of the circuit is

1 $25 \Omega$
2 $40 \Omega$
3 $5 \Omega$
4 $35 \Omega$
Alternating Current

155057 A charged capacitor $\mathrm{C}=30 \mu \mathrm{F}$ is connected to an inductor $L=27 \mathrm{mH}$. The angular frequency of their oscillations is-

1 $9.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
2 $3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
3 $1.1 \times 10^{3} \mathrm{rad} / \mathrm{s}$
4 $0.3 \times 10^{3} \mathrm{rad} / \mathrm{s}$
Alternating Current

155058 A capacitor ' $C$ ' connected across a D.C. source, the reactance of capacitor will be

1 Zero
2 High
3 Low
4 Infinite