Electro Magnetic Induction And Alternating Currents Question 340
Question: A highly conducting ring of radius R is perpendicular to and concentric with the axis of a long solenoid as shown in fig. The ring has a narrow gap of width d in its circumference. The solenoid has cross sectional area A and a uniform internal field of magnitude B0. Now beginning at t = 0, the solenoid current is steadily increased to so that the field magnitude at any time t is given by B(t) = B0 + at where $ \alpha >0 $ . Assuming that no charge can flow across the gap, the end of ring which has excess of positive charge and the magnitude of induced e.m.f. in the ring are respectively
Options:
A) X, Aa
B) X pR2a
C) Y, pA2a
D) Y, pR2a
Show Answer
Answer:
Correct Answer: A
Solution:
Since the current is increasing, so inward magnetic flux linked with the ring also increasing (as viewed from left side). Hence induced current in the ring is anticlockwise, so end x will be positive. Induced emf $ |e|=A\frac{dB}{dt}=A\frac{d}{dt}(B_{o}+\alpha t) $
$ \Rightarrow |e|=A\alpha $
BETA
