Two bulbs of wattage 40 W and 100 W each rated at 200 V are connected in series across a 440 V. What will happen?

Question

Two bulbs of wattage 40 W and 100 W each rated at 200 V are connected in series across a 440 V. What will happen? (A) 40 W bulb will fuse (B) 100 W bulb will fuse (C) Both bulbs will fuse (D) Nothing will happen

Tardigrade Admin · Accepted Answer

From Joules law, power consumed by a bulb of resistance

R

is

P = \frac{V ^{2}}{R}

where

V

is potential difference.
Given,

V = 200

volt,

P = 40 W

∴ R_{1} = \frac{V ^{2}}{P} = \frac{( 200 ) ^{2}}{40} = 1000 Ω

From Ohms law,

V = I_{1} R

∴ I_{1} = \frac{V}{R} = \frac{200}{1000} = \frac{1}{5} A

Similarly, resistance of

100 W

bulb,

R_{2} = \frac{( 200 ) ^{2}}{100} Ω = 400 Ω

∴ I_{2} = \frac{1}{2} A

when bulbs are connected in series, effective resistance

R = R_{1} + R_{2} = 1000 Ω + 400 Ω = 1400 Ω

When supply voltage is

440 V

,
then current

I = \frac{440}{R} = \frac{440}{1400} = 0.31 A

Since,

I > I_{1}

but less than hence the bulb of

40 W

will fuse.

Q. Two bulbs of wattage 40W and 100W each rated at 200V are connected in series across a 440V. What will happen?

40 W bulb will fuse

100 W bulb will fuse

Both bulbs will fuse

Nothing will happen

Q. Two bulbs of wattage $40 W$ and $100 W$ each rated at $200 V$ are connected in series across a $440 V$ . What will happen?