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Exercise · Q15

Q.A rectangular conducting loop is being pulled at a constant velocity out of a region of uniform magnetic field, through the field's boundary, until it has completely left the field. Describe qualitatively how the magnitude of the induced emf changes with time from the instant the loop starts to leave the field until well after it has fully left, and state when the induced emf is exactly zero.

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Before the loop starts to leave (fully inside the field). The loop is completely within the uniform field region, so its flux linkage is constant (maximum, since its full area is exposed to the field); with no change in flux, the induced emf is exactly zero.

While the loop is crossing the boundary (partly in, partly out). As the loop moves at constant velocity vv across the field's edge, the area of the loop still overlapping the field region shrinks at a CONSTANT rate (for a loop whose leading/trailing edge is straight and parallel to the boundary, moving at constant speed). Since BB is uniform and the rate of change of overlapping area, dA/dtdA/dt, is constant during this phase, the induced emf E=B dA/dt\mathcal{E}=B\,dA/dt is also CONSTANT (non-zero) throughout the whole time the loop is crossing the boundary. …

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