A square coil of side $25 c m$ having $1000$ turns is rotated with a uniform speed in a magnetic field about an axis perpendicular to the direction of the field. At an instant $t$ , the emf induced in the coil is $e = 200 \sin (100 π t)$ . Magnetic induction is

$0.50 T$
$0.02 T$
$10.3 T$
$0.1 T$
$0.01 T$

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Solution

The correct option is E
$0.01 T$

Step 1: Given data
A square coil of side $25 c m o r 0.25 m$
$N = 1000 t u r n s$
$e = 200 \sin 100 πt$
Area $(A) = S i d e \times S i d e A = 0.25 \times 0.25 A = 0.0625 m^{2}$
Step 2: Formula used:
The general formula of the conductor in a magnetic field is $E = v L B$
The negative sign indicates that
The general formula of the coil in a magnetic field is $E = B A N ω \sin θ = B A N ω \sin (ω t)$ .
The maximum positive value of the e.m.f $(E_{0})$ is when $θ = ω t = 90 °$ .
Where $θ$ is angle between the plane of the armature and the magnetic field.
$S i n c e, S i n (90^{0}) = 1$
So finally we get $E_{0}$ = $B A N ω$ .
An emf is induced due to the motion of the conductor in a magnetic field which is given by $e = v l B$ where, $e$ is the induced emf, $l$ is the length of the conductor, $v$ is the velocity of the conductor.
The emf induced due to angular motion of the conductor is given by $B A N ω = E_{0}$ , where $A$ is the area, $B$ is the magnetic induction, $N$ is the number of turns, $E_{0}$ is the maximum value of emf and $ω$ is the rotational speed.
Step 3: Calculate the magnetic induction
We have, $E_{0} = 200 \sin (100 π t)$
$ω = 100 π ∴ B A N ω = E_{0} ∴ B = \frac{E_{0}}{A N ω} = \frac{200}{(0.25 \times 0.25) \times 1000 \times 100 π}$
or $B = 0.01 T$
Hence, magnetic induction is $B = 0.01 T$ .
Thus, the correct option is option E.

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