6. In the diagram below, a short solenoid with 25 turns of wire is wound around an inner longsolenoid with 400 turns. When the current in the inner solenoid is 5.00 A, the flux through each turnof the outer solenoid is 0.0500 Wb. What is the magnitude of the emf induced in the outer coil (in V)when the current in the inner coil is changing at a rate of 10.0 A/s? BIG HINT: Call the inner solenoid#1 and the outer solenoid #2. Then recall that 2 = Mi1/N2 and E2 = - Mdi1/dt Mucho easy problem!%3D(A) 1.00 (B) 1.95 (C) 0.38725 TURNS(D) 3.00 (E) 2.50 (F) 3.65400 TURNS

Solution:-GivenN2=25 turnsN1=400 turnsI1=5 Aϕ2=0.05 Wbdi1dt=10 A/s

Answered: 6. In the diagram below, a short…

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