Concepts Of Physics MCQ Edition [Volume 2]PhysicsElectromagnetic Induction
At t = 0 , a conducting wire ab of length l , resistance r , and mass m begins sliding down a smooth, vertical, thick pair of connected rails. A uniform magnetic field B is present in the space, directed perpendicular to the plane of the rails. After steady state is reached, what is the relationship between the rate of heat developed in the wire and the rate at which the gravitational potential energy decreases?
Options
- AThe rate of heat developed is twice the rate of potential energy decrease.
- BThey are exactly equal.
- CThe rate of heat developed is zero.
- DThe rate of heat developed is half the rate of potential energy decrease.
Correct answer
A. The rate of heat developed is twice the rate of potential energy decrease.
Step-by-step solution
Let v be the downward velocity of the wire at time t . The motional emf induced in the wire is = Bvl . The induced current in the circuit is i = r = Bvl r . The magnetic force acting on the wire opposes its motion and is given by F_m = ilB = B^2 l^2 v r . The net downward force on the wire is F_ net = mg - F_m , so the equation of motion is: m dv dt = mg - B^2 l^2 v r At terminal velocity v_m , the acceleration dv dt = 0 , so: mg = B^2 l^2 v_m r B^2 l^2 r = mg v_m Substituting this into the equation of motion: m dv