The length of seconds pendulum at a place wl}ere g = 4.9 m/`s^2` is

The length of a seconds pendulum at a place where g = 9.8 frac(m)(s^2) is 0.994m If the amplitude is 0.15m, its maximum velocity is

Determine the length of a seconds pendulum at a place, where the acceleration due to gravity is 9.77 frac(m)(s^2)

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

The length of second 's pendulum on the surface of earth is nearly 1 m . Its length on the surface of moon should be [ Given : acceleration due to gravity (g) on moon is 1/6th of that on the earth 's surface]

If the length of second's pendulum is decreased by 2%, how many seconds it will lose per day

Find the change in length of a second 's pendulum , if the acceleration due to gravity at the place changes from 9.75 m/s^2 to 9.8 m/s^2 .

The path length of oscillation of simple pendulum of length 1 m is 16 cm. Its maximum velocity is (take, g=pi^(2)m//s^(2) )

The period of a simple pendulum is found to increase by 50% , when the length of the pendulum is increased by 0.6 m. Calculate the initial length and initial period of oscillation at a place where g = 9.8 frac(m)(s^2)

When the length of a simple pendulum is increased by 36 cm, its time period of oscillation is found to increase by 25 %. The initial length of the simple pendulum 1s (Acceleration due to gravity= 9.8ms^(-2) )