Multiple Choice
Will a frequency f = 60 Hz or ω = 75 s−1 produce a larger max current in an inductor connected to an AC source?
31. Alternating Current
Inductors in AC Circuits
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The peak current to and from an inductor is i when the emf source has a peak voltage V and frequency f. What is the peak current to and from the inductor if the frequency and peak voltage are doubled to 2f and 2V, respectively?
A
i/4
B
i/2
C
2i
D
4i
E
i
Verified step by step guidance1
Understand that the relationship between voltage, current, and inductance in an AC circuit is given by the formula: \( V = I \cdot X_L \), where \( X_L = 2\pi f L \) is the inductive reactance.
Recognize that when the frequency \( f \) and the peak voltage \( V \) are doubled, the new frequency becomes \( 2f \) and the new peak voltage becomes \( 2V \).
Calculate the new inductive reactance using the formula \( X_L = 2\pi (2f) L = 4\pi f L \). This shows that the inductive reactance is doubled.
Substitute the new values into the voltage-current relationship: \( 2V = I' \cdot 4\pi f L \).
Solve for the new peak current \( I' \) by rearranging the equation: \( I' = \frac{2V}{4\pi f L} = \frac{V}{2\pi f L} = \frac{i}{2} \). Thus, the peak current is halved, confirming the correct answer is \( i \).
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