Qstnid -Iv-3-a Bulb Rated 60 W At 220 V Is Connected Across A Household Supply Of Alternating Voltage Of 220 V. Calculate The Maximum Instantaneous Current Through The Filament. - 39: Alternating Current - Neet-xii-physics

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NEET-XII-Physics

39: Alternating Current

with Solutions - page 5

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#3
A bulb rated 60 W at 220 V is connected across a household supply of alternating voltage of 220 V. Calculate the maximum instantaneous current through the filament.
Ans : Power of the bulb, P = 60 W
Voltage at the bulb, V = 220 V
RMS value of alternating voltage, E_rms = 220 V
P = V²R,
where R = resistance of the bulb
`` \therefore R\mathit{=}\frac{{V}^{\mathit{2}}}{P}=\frac{220\times 220}{60}``
`` =806.67``
`` ``
Peak value of voltage `` \left({E}_{0}\right)`` is given by,
`` {E}_{0}={E}_{\,\mathrm{\,rms\,}}\sqrt{2}``
=`` 220\times \sqrt{2}``
= 311.08
Now, maximum current through the filament `` \left({i}_{0}\right)`` is,
`` {i}_{0}=\frac{{E}_{0}}{R}``
`` \Rightarrow {i}_{0}=\frac{311.08}{806.67}=0.39\,\mathrm{\,A\,}``
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