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 period of a particle executing SHM is T . There is a point P at a distance 'x' from the mean position 'O' . When the particle passes P towards OP , it has speed v . Find the time in which it returns to P again.
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:
Amplitude of a particle executing SHM is a and its time period is T. Its maximum speed is
The time period of oscillation of a particle that executes SHM is 1.2s . The time starting from mean position at which its velocity will be half of its velocity at mean position is
The time period of a particle in simple harmonic motion is T. Assume potential energy at mean position to be zero. After a time of (T)/(6) it passes its mean position its,
The periodic time of a particle executing S.H.M. is12 second.After how much intervalfrom t=0 will its displacement be half of its amplitude ?
The periodic time of a body executing SHM is 2s. After how much time interval from t=0, will its displacement be half of its amplitude?
Amplitude of oscillation of a particle that executes SHM is 2cm . Its displacement from its mean position in a time equal to 1//6^(th) of its time period is
