A particle doing simple harmonic motion amplitude `= 4 cm` time period `= 12sec` The ratio between time taken by it in going from its mean position to `2cm ` and from `2cm` to extreme position is

A particle executes a simple harmonic motion of time period T. Find the time taken by the particle to go directly from its mean position to half the amplitude.

A simple harmonic motion has an amplitude A and time period T. What is the time taken to travel from x=A to x=A//2 ?

A particle is executing simple harmonic motion of amplitude 12 cm and time period 3 s. Calculate the time required by the particle to move between two points 6 cm on either side of mean position.

The equation of a simple harmonic oscillator with amplitude 5 cm and period 2 sec is if particle is starting from the mean positions is–

A particle is executing SHM of amplitude 4cm and time period 12s . The time taken by the particle in going from its mean position to a position of displacement equal to 2cm is T_1 . The time taken from this displaced position to reach the extreme position on the same side is T_2.T_1//T_2 is

A particle is performing simple harmonic motion along x- axis with amplitude 4 cm and time period 1.2 sec .The minimum time taken by the particle to move from x = 2 cm to x = +4 cm and back again is given by

A particle is perfroming simple harmoic motion along x-"axis" with amplitude 4 cm and time period 1.2 sec .The minimum time taken by the particle to move from x=2 cm to x= + 4 cm and back again is given by