Final answer:
Using Faraday's law of induction and the provided mutual inductance, current change, and time interval, the induced voltage is calculated to be approximately 0.333 V, making 0.300 V the closest option to the calculated value.
Step-by-step explanation:
When a current in one coil is turned off, the change in current induces a voltage in a nearby coil through mutual inductance. The voltage induced in one coil by the change in current through the other is given by Faraday's law of induction:
V = -M (ΔI/Δt)
Where:
- V is the induced voltage in volts (V)
- M is the mutual inductance between the two coils in henrys (H)
- ΔI is the change in current in amperes (A)
- Δt is the time in which the current change occurs in seconds (s)
Given the mutual inductance (M) of 5.00 mH, a current change (ΔI) of 2.00 A, and a time interval (Δt) of 30.0 ms, we can calculate the induced voltage (V):
V = -5.00 x 10^-3 H * (2.00 A / 30.0 x 10^-3 s)
V = -0.333... V
The negative sign indicates the induced voltage is in a direction to oppose the change in current, according to Lenz's law. The magnitude of the induced voltage is approximately 0.333 V. Hence, the closest answer choice provided is 0.300 V (a).