A wire of length 1 m moving with velocity 8 m s - 1 at right angles to a magnetic field of 2 T . The magnitude of induced emf, between the ends of wire will be ___________.

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The expression of motional emf is e = B L v sin θ , where, θ is angle between magnetic field and direction of motion. Here, θ = 90 ° , So, induced emf across the ends of wire is e = B L v sin 90 ° = B L v = 2 × 1 × 8 = 16 V

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