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When the current in a toroidal solenoid is changing at a rate of 0.0270 A/s, the magnitude of the induced emf is 12.5 mV. When the current equals 1.30 A, the average flux through each turn of the solenoid is 0.00245 Wb. How many turns does the solenoid have?

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  1. Today, 00:21
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    no of turns is 246

    Explanation:

    given data

    current changing rate dI/dt = 0.0270 A/s

    induced emf = 12.5 mV

    current I = 1.30 A

    average flux ∅ = 0.00245 Wb

    to find out

    no of turns

    solution

    we know from faradays law

    emf = d∅/dt

    and emf = L * di/dt

    and L = emf / (di/dt) ... 1

    so emf = N * d (∅) / dt

    here we know Li = N∅

    N = Li / ∅

    so by equation 1

    N = (emf * i) / (di∅/dt)

    put here value

    N = (0.00245 * 1.3) / (0.0270 * 0.00245)

    N = 245.65

    so no of turns is 246
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