MHT CET · Physics · Alternating Current
In series LCR circuit, at resonance the peak value of current will be \(\left[E_0\right.\) is peak emf, \(R\) is resistance, \(\omega L\) is inductive reactance, and \(1 / \omega \mathrm{C}\) is capacitive reactance]
- A \(\frac{E_0}{R}\)
- B \(\frac{E_0}{\sqrt{2} R}\)
- C \(\frac{E_0}{\sqrt{R^2+\left(\omega L-\frac{1}{\omega C}\right)^2}}\)
- D \(\frac{E_0}{\sqrt{2} \sqrt{R^2+\left(\omega L-\frac{1}{\omega C}\right)^2}}\)
Answer & Solution
Correct Answer
(A) \(\frac{E_0}{R}\)
Step-by-step Solution
Detailed explanation
At resonance, the net reactance of the circuit is zero and the impedance is equal to the resistance.
\(\therefore \mathrm{I}_0=\frac{\mathrm{E}_0}{\mathrm{R}}\)
\(\therefore \mathrm{I}_0=\frac{\mathrm{E}_0}{\mathrm{R}}\)
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