Q.A pure inductor of is connected to a source of . Find the inductive reactance and rms current in the circuit if the frequency of the source is .
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Start your 14-day free trial to unlock the full solution →For a pure inductor, the opposition to current is given by inductive reactance . Using the given values, and the rms current .
The key idea here is that a pure inductor does not dissipate power like a resistor — it stores and releases energy in its magnetic field. But it still opposes the flow of alternating current. This opposition is called inductive reactance (), and it behaves like a frequency-dependent resistance.
For a DC circuit, an inductor is just a wire (zero resistance). But for AC, the changing current creates a changing magnetic field, which induces a back emf that fights the source voltage. The faster the current changes (higher frequency), the greater this opposition. That’s why depends directly on frequency.
where is the frequency in hertz and is the inductance in henrys.
Once we have , Ohm’s law for AC circuits gives the rms current:
Let’s work through it step by step.
- Convert inductance to henrys. The given inductance is . Since :
- Calculate inductive reactance. Frequency . Using the formula:
First, . Then:
Rounding to three significant figures (matching the given data):
- Find the rms current. The source voltage is (rms value — AC voltmeters read rms). Using Ohm’s law for AC: …
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