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\prob{57}
9277_57

A uniform and constant magnetic field $\vec{B}$ is directed perpendicularly into the plane of the page everywhere within a rectangular region as shown above. A wire circuit in the shape of a semicircle is uniformly rotated counterclockwise in the plane of the page about an axis A. The axis A is perpendicular to the page at the edge of the field and directed through the center of the straight-line portion of the circuit. Which of the following graphics best approximates the emf $\epsilon$ induced in the circuit as a function of t?


  1. 9277_57_abcde

Electromagnetism}Faraday Law

Faraday's Law has the induced voltage is given by the change in magnetic flux, as V = -\frac{dB \cdot A}{dt}. (The minus sign shows that the induced voltage opposes the change.)

Since the induced voltage has to be periodic (as the half-circle rotates around A), choices (D) and (E) are immediately eliminated.

The voltage changes from positive to negative in regions where the change in flux is slowing down, goes to 0, then speeds up again. Thus, choice (C) is out.

The change in flux is constantly increasing as the loop spins into the field, and it is constantly decreasing as it spins out of the field. This is choice (A).

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Comments
Rosenlicht
2011-11-08 14:00:08
I think you mean that the flux is constantly increasing or decreasing, but the change in flux is constant and of course discontinuous when you go from increasing flux to decreasing flux.NEC
mike
2010-10-06 17:38:38
As noted by herrphysik, \epsilon =- B \frac{ \Delta A}{\Delta t}. So the emf is only dependent on the fact that the area is changing, and not dependent on how much area is currently enclosed (this is specific to this problem). Answer B is a trick, since you see the area increasing and decreasing. Once the entire semicircle is in the B field, \Delta A / \Delta t goes from positive to negative, but |\Delta A / \Delta t| remains fixed. Thus, answer A is the correct one.NEC
Maxwells_Demon
2008-09-21 08:48:59
Given the negative sign in Faraday's Law, wouldn't the induced emf in choice (A) be negative at t=0 rather than positive?
Kabuto Yakushi
2010-09-18 09:21:56
I know this is a two year old post but i just thought of a solution, so I'm posting for everyone. Remember that B is a vector and written as \vec{B}. Take the diagram to be on the x-y plane, one will see that \vec{B} is in the negative direction hence \vec{B}=-B_0. So the minus signs cancel out.

Answered Question!
boundforthefloor
2006-11-20 23:09:45
herrphysik is right, I'd like to add the formula clarification V = \Delta(BA)/\Delta(t)=\Delta\Phi/\Delta t
agaliarept
2006-12-01 18:11:03
Thank you. Just what I needed.
NEC
Andresito
2006-03-28 07:01:54
I thought that choice (B) was the correct one.

The change in the flux "with" respect to time at t=0s is zero. The only graph that show this is (B).

Intead of saying, "The change in flux is constantly increasing as the loop spins into the field, and it is constantly decreasing as it spins out of the field" it would be better to say that "the flux change is discontinous".
herrphysik
2006-08-24 20:47:18
The result would be something like (B) if Faraday's Law said that the emf were proportional to the total magnetic flux through the circuit, but it doesn't. It says that the emf is proportional to the RATE OF CHANGE OF MAGNETIC FLUX, and the circuit here being a semi-circle spinning with constant angular velocity, the rate of chage of magnetic flux is CONSTANT.
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Given the negative sign in Faraday's Law, wouldn't the induced emf in choice (A) be negative at t=0 rather than positive?

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