5) If the current in a solenoid changes from 5 A to 1 A in 2 seconds, emf generated of 4 Volt. If it was connected with an alternating source of frequency 70 Hz , calculate its inductive reactance. \( \bar{L}=5 \) \( t=2 \)

To find the inductive reactance, we start with the formula for inductive reactance, which is given by \( X_L = 2\pi f L \). Here, \( f \) is the frequency (70 Hz), and \( L \) is the inductance (5 H). Plugging in the values, we have: \[ X_L = 2 \pi (70) (5) \approx 2199.11 \, \Omega \] So, the inductive reactance of the solenoid at a frequency of 70 Hz is approximately 2199.11 ohms. Now, let’s visualize this! Think of the solenoid as a tiny roller coaster ride for electrons; the higher the frequency (like faster track loops), the greater the resistance to their ride - this is essentially what inductive reactance measures. So, with the given frequency, it's like giving the electrons a bumpy ride full of twists and turns!