Question #43057

1 Answer
Mar 29, 2017

Assuming bigger pendulum as the pendulum of bigger time period i.e.having time period #(5T)/4#

As the two pendulums start at the same time in simple harmonic motion from the mean position,their initial phase angles are zero

The bigger pendulum completes its one oscillation in time #t=(5T)/4# and comes back to the mean position.During this time the point on reference circle associated with SHM rotates by an angle #2pi#

If #omega# represents the angular velocity of the reference point associated with SHM of first pendulum of time period T,then the phase of the this pendulum after #(5T)/4# s will be

#omega(5T)/4=omegaT+omegaT/4#

#=2pi+(2pi)/4=2pi+pi/2#

Hence the phase difference

#2pi+pi/2-2pi=pi/2#