In a transformer, the number of turns in the primary coil are 140 and that in the secondary coil are 280. If the current in primary coil is 4 A, then the current in the secondary coil is:

4 A

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2 A

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6 A

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10 A

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Solution

The correct option is B
2 A

Given: Number of turns in primary coil ( $N_{p}$ ) = 140
Number of turns in secondary coil ( $N_{s}$ ) = 280
Current in primary coil ( $i_{p}$ ) = 4 A

Let, current in secondary coil = ( $i_{s}$ )
Voltage in primary coil = ( $V_{p}$ )
Voltage in secondary coil = ( $V_{s}$ )
We know that, in a transformer
$\frac{N_{p}}{N_{s}} = \frac{V_{p}}{V_{s}} = \frac{i_{s}}{i_{p}}$

$∴$ $\frac{N_{p}}{N_{s}} = \frac{i_{s}}{i_{p}} \Rightarrow i_{s} = 4 \times \frac{140}{280} = 2$ A

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