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प्रश्न
A bulb is connected to a battery of p.d 4 V and internal resistance 2.5 Ω. A steady current of 0.5 A flows through the circuit. Calculate:
- the total energy supplied by the battery in 10 minutes
- the resistance of the bulb and
- the energy dissipated in the bulb in 10 minutes.
उत्तर
Given, V = 4V, I = 0.5 A,
t = (60 × 10) sec
- Total energy supplied by battery W = VI t
W = 4 × `1/2` × 600
= 1200 J - Let R be the resistance of the bulb. int. Resistance = r = 2.5 Ω
I = `E/("R" + r)`
`1/2 = 4/("R" +2.5)`
R + 2.5 = 8
∴ R = 8 - 2.5
= 5.5 Ω - Energy dissipated in bulb in 10 min.
W = I2 R t
W = `1/2 xx 1/2 xx 55/10 xx 600`
= 825 J
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