Which of the following situation will NOT result in an electromagnetic induction in a coil of wire? A. Moving a bar magnet in and out of the coil. B. Placing the bar magnet stationary inside the coil. C. Rotating the bar magnetic very close to a coil. D. Rotating the coil of wire in an external uniform magnetic field. E. Moving the coil closer or farther away from the bar magnet. For the electromagnetic induction to occur in a loop (or coil) of wire, there MUST be A. a magnet present B. a loop of wire (or coil) present. C. both magnet and loop (coil) present. D. a change in magnetic flux through the loop (or coil). E. charged particle and magnetic field present

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two related questions please answer/

Which of the following situation will NOT result in an
electromagnetic induction in a coil of wire?
A. Moving a bar magnet in and out of the coil.
B. Placing the bar magnet stationary inside the coil.
c. Rotating the bar magnetic very close to a coil.
D. Rotating the coil of wire in an external uniform magnetic
field.
E. Moving the coil closer or farther away from the bar magnet.
For the electromagnetic induction to occur in a loop (or coil) of wire,
there MUST be
A. a magnet present
B. a loop of wire (or coil) present.
C. both magnet and loop (coil) present.
D. a change in magnetic flux through the loop (or coil).
E. charged particle and magnetic field present
Transcribed Image Text:Which of the following situation will NOT result in an electromagnetic induction in a coil of wire? A. Moving a bar magnet in and out of the coil. B. Placing the bar magnet stationary inside the coil. c. Rotating the bar magnetic very close to a coil. D. Rotating the coil of wire in an external uniform magnetic field. E. Moving the coil closer or farther away from the bar magnet. For the electromagnetic induction to occur in a loop (or coil) of wire, there MUST be A. a magnet present B. a loop of wire (or coil) present. C. both magnet and loop (coil) present. D. a change in magnetic flux through the loop (or coil). E. charged particle and magnetic field present
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