Half frequency = halved EMF?

[dekoyl]

I can't see a formula that shows the fact that if you half the frequency of a spinning coil, the induced EMF will be halved as well.
I can kinda see why, but I can't see the link via formulae (or maybe I'm just so rusty I forgot a formula).

[appianway]

It does.

Induced EMF is inversely proportional to the time taken, and the time taken for 1/4 of a revolution is 1/4 of the period. The period is calculated by 1/f, so hence halving the frequency halves the EMF.

[/0]

Normally you're asked for the emf of a quarter turn. If the whole period is T, then

[dekoyl]

Oh I see =\ Thanks /0 and appianway

[/0]

You can also use this formula to answer such a question, however it is not in the course.

The flux through the coil at any time is , where is the angle between the magnetic field and a vector perpendicular to the face of the coil.

If the coil rotates at a frequency of with period , the coil will move through an angle of in time , so the angular velocity is

Therefore, in time , the coil will rotate through

Thus, we may say that . (we assume the coil starts perpendicular to field, but this is no problem)

Finally,





Now, decides the amplitude of the graph, so by decreasing you decrease the amplitude.

The maximum emf is given by .