when the north pole of a bar magnet is moved into a solenoid, the needle on a galvanometer attached to the…

when the north pole of a bar magnet is moved into a solenoid, the needle on a galvanometer attached to the solenoid moves to the left, indicating that a current is produced. the magnet is then pulled out at a faster speed. what will be the result?\n○ a larger current in the same direction\n○ a larger current in the opposite direction\n○ a smaller current in the same direction\n○ a smaller current in the opposite direction

when the north pole of a bar magnet is moved into a solenoid, the needle on a galvanometer attached to the solenoid moves to the left, indicating that a current is produced. the magnet is then pulled out at a faster speed. what will be the result?\n○ a larger current in the same direction\n○ a larger current in the opposite direction\n○ a smaller current in the same direction\n○ a smaller current in the opposite direction

Answer

Explanation:

Step1: Recall Faraday's law

According to Faraday's law of electromagnetic - induction, the induced emf $\epsilon=-N\frac{\Delta\Phi}{\Delta t}$, where $N$ is the number of turns in the solenoid, $\Delta\Phi$ is the change in magnetic flux, and $\Delta t$ is the time interval.

Step2: Analyze the effect of speed

When the magnet is pulled out faster, $\Delta t$ is smaller. Since $\Delta\Phi$ (the change in magnetic flux) is non - zero and in the opposite direction compared to when the magnet was inserted, and $N$ is constant, a smaller $\Delta t$ leads to a larger magnitude of induced emf.

Step3: Determine the direction

Lenz's law states that the induced current will oppose the change in magnetic flux. When the magnet is inserted, a current is produced in one direction. When the magnet is pulled out, the change in magnetic flux is in the opposite direction, so the induced current is in the opposite direction.

Answer:

B. a larger current in the opposite direction