Find the length of seconds pendulum at a place where `g = pi^(2) m//s^(2)`.

The length of a second's pendulum on the surface of earth is 1m. What will be the length of a second's pendulum on the moon?

While measuring the acceleration due to gravity by a simple pendulum , a student makes a positive error of 1% in the length of the pendulum and a negative error of 3% in the value of time period . His percentage error in the measurement of g by the relation g = 4 pi^(2) ( l // T^(2)) will be

If the length of second pendulum becomes (1)/(3) what will be its periodic time?

What would be the length of a simple pendulum on Moon if we get its period of 2s?

The angle made by the string of a simple pendulum with the vertical depends on time as theta=pi/90sin[(pis^-1)t] . Find the length of the pendulum if g=pi^2ms^-2

Force F is applied on upper pulley. If F = 30 t where t is time in second. Find the time when m_(1) loses contact with floor : (Take g = 10 m//s^(2) )

What is the length of a simple pendulum, which ticks seconds ?

For simple pendulum, T = 2pi sqrt((l)/(g)) where T is the periodic time and l is the length of pendulum. If there is 4% error in the measure of periodic time then find the error percentage in the length of pendulum.

The periodic time of simple pendulum is T=2pi sqrt((l)/(g)) . The length (l) of the pendulum is about 100 cm measured with 1mm accuracy. The periodic time is about 2s. When 100 oscillations are measured by a stop watch having the least count 0.1 second. Calcaulte the percentage error in measurement of g.

A ball is projected vertically up wards with a velocity of 100 m/s. Find the speed of the ball at half the maximum height. (g=10 m//s^(2))