If at any time, the displacement of a simple pendulum be 0.02 m, then its acceleration is 2 m/`s^2`. What is the angular speed of the pendulum at that instant?

If at some instant of time, the displacement of a simple harmonic oscillator is 0.02 m and its acceleration is 2ms^(-2) , then the angular frequency of the oscillator is

If the period of a simple pendulum is 2s, then its frequency is 0.5 Hz

The time period of a simple pendulum is 0.2 s. What is its frequency of oscillation?

The period of a simple pendulum is double, when its length is increased by 1.2 m. The original length of the simple pendulum is

If a simple harmonic oscillator has got a displacement of 0.02 m and acceleration equal to 0.02m//s^(2) at any time, the angular frequency of the oscillator is equal to:

If the time period of a two meter long simple pendulum is 2s, the acceleration due to gravity at the place where pendulum is executing S.H.M. is:

If a simple harmonic oscillator has got a displacement of 0.02m and acceleration equal to 2.0ms^-2 at any time, the angular frequency of the oscillator is equal to

A particle executing simple harmonic motion with amplitude of 0.1 m. At a certain instant when its displacement is 0.02 m, its acceleration is 0.4 m//s^(2) . The maximum velocity of the particle is (in m/s)