Time period of a particle executing `SHM` is `8` sec. At `t=0` it is at the mean position. The ratio of the distance covered by the particle in the `1st` second to the `2nd` second is:

The time period of a particle executing SHM is T . After a time T//6 after it passes its mean position, then at t = 0 its :

The period of a particle in SHM is 8 s . At t = 0 it is in its equilibrium position. (a) Compare the distance travelled in the first 4s and the second 4s . (b) Compare the distance travelled in the first 2s and the second 2s .

Amplitude of a particle executing SHM is a and its time period is T. Its maximum speed is

x - t equation of a particle in SHM is x = (4 cm)cos ((pi)/(2)t) Here , t is in seconds. Find the distance travelled by the particle in first three seconds.

For a stone what is the ratio of the distance covered in its 1st, 3rd and 5th seconds of its free fall.

The time period of a particle executing S.H.M.is 12 s. The shortest distance travelledby it from mean position in 2 second is ( amplitude is a )

Time period of a particle executing SHM is 16s.At time t = 2s , it crosses the mean position . Its amplitude of motion is ( 32sqrt(2))/(pi) m . Its velocity at t = 4s is

The displacement of a particle is moving by x = (t - 2)^2 where x is in metres and t in second. The distance covered by the particle in first 4 seconds is.

The displacement of a particle is moving by x = (t - 2)^2 where x is in metres and t in second. The distance covered by the particle in first 4 seconds is.

The kinetic energy of a particle executing shm is 32 J when it passes through the mean position. If the mass of the particle is.4 kg and the amplitude is one metre, find its time period.