With usual notation, the time period of rotation of a satellite orbiting close to the surface of earth
(a)`T=2pisqrt(R/g)` ,(b)84.6 minutes ,(c)`T=2pisqrt(R^3/(GM))` , (d)`T=2pisqrt((GM)/R)`

If the length of the simple pendulum is equal to the radius of the earth, anf it oscillates just above the surface of the earth then its time period is a. 2pisqrt(R/(2g)) b. 2pisqrt(R/g) c. nearly 59.5 minutes d. 84.6 minutes

How many times of relative error in I is the relative error in T, when T = 2pisqrt(l//g)

Let V,T,L,K and r denote the speed, time period, angular momentum, kinetic energy and radius of satellite in circular orbit, then (a) V prop r^(-1) , (b) L prop r^(1//2) , (c) T prop r^(3//2) , (d) K prop r^(-2)