(A) For circuit $A$ ($LR$ circuit): $R_{eq} = 4 + \frac{6 \times 12}{6 + 12} = 4 + \frac{72}{18} = 4 + 4 = 8 \text{ } \Omega$. $L_{eq} = 2 \text{ H}$.

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$\tau_{A}=\frac{1}{4} \text{ s}$ and $\tau_{B}=5 \text{ s}$

(A) For circuit $A$ ($LR$ circuit): $R_{eq} = 4 + \frac{6 \times 12}{6 + 12} = 4 + \frac{72}{18} = 4 + 4 = 8 \text{ } \Omega$. $L_{eq} = 2 \text{ H}$. The time constant $\tau_{A} = \frac{L_{eq}}{R_{eq}} = \frac{2}{8} = \frac{1}{4} \text{ s}$. For circuit $B$ ($RC$ circuit): $R_{eq} = \frac{10 \times 10}{10 + 10} = 5 \text{ } \Omega$. $C_{eq} = 0.5 + 0.5 = 1 \text{ F}$. The time constant $\tau_{B} = R_{eq} C_{eq} = 5 \times 1 = 5 \text{ s}$.

Class 12 Physics Electromagnetic Induction R-L D.C. Circuit

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Two figures are shown as Fig. $A$ and Fig. $B$. The time constant of Fig. $A$ is $\tau_{A}$ and the time constant of Fig. $B$ is $\tau_{B}$. Then:

AP EAMCET 2024 All AP EAMCET

A
$\tau_{A}=\frac{1}{4} \text{ s}$ and $\tau_{B}=5 \text{ s}$
B
$\tau_{A}=\frac{1}{2} \text{ s}$ and $\tau_{B}=\frac{1}{5} \text{ s}$
C
$\tau_{A}=4 \text{ s}$ and $\tau_{B}=5 \text{ s}$
D
$\tau_{A}=2 \text{ s}$ and $\tau_{B}=1 \text{ s}$

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Electromagnetic Induction

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R-L D.C. Circuit

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MediumAP EAMCET 2023

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Two figures are shown as Fig. $A$ and Fig. $B$. The time constant of Fig. $A$ is $\tau_{A}$ and the time constant of Fig. $B$ is $\tau_{B}$. Then:

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Regarding the given circuit,the correct statement is:

$A$ solenoid has an inductance of $60 \, H$ and a resistance of $30 \, \Omega$. If it is connected to a $100 \, V$ battery,how long will it take for the current to reach $\frac{e-1}{e} \approx 63.2\%$ of its final value?

In an $L-R$ decay circuit,the initial current at $t = 0$ is $I$. The total charge that has flown through the resistor until the energy in the inductor has reduced to one-fourth of its initial value is:

In the figure,a lamp $P$ is in series with an iron-core inductor $L$. When the switch $S$ is closed,the brightness of the lamp rises relatively slowly to its full brightness compared to the case without the inductor. This is due to:

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