The displacement of a particle executing S.H.M. is given by x = 0.01sin100(t + 0.05). The time period is:
(1) 0.01 s
(2) 0.02 s
(3) 0.1 s
(4) 0.2 s
A boy is swinging in a swing. If he stands, the time period will:
(1) First decrease, then increase
(2) Decrease
(3) Increase
(4) Remain same
The time period of a simple pendulum in a freely falling lift will be:
(1) Finite
(2) Infinite
(3) Zero
(4) All of these
If the effective length of a simple pendulum is equal to the radius of the earth (R), the time period will be:
(1)
(2)
(3)
(4)
A body executing S.H.M. along a straight line has a velocity of 3 ms-1 when it is at a distance of 4 m from its mean position and 4 ms-1 when it is at a distance of 3 m from its mean position. Its angular frequency and amplitude are:
(1) 2 rad s-1 & 5 m
(2) 1 rad s-1 & 10 m
(3) 2 rad s-1 & 10 m
(4) 1 rad s-1 & 5 m
The frequency of oscillation of a mass m suspended by a spring is . If the length of the spring is cut to one third, then the same mass oscillates with a frequency , then:
(1) = 3
(2) 3 =
(3) =
(4) =
The plot of velocity (v) versus displacement (x) of a particle executing simple harmonic motion is shown in the figure. The time period of osciliation of the particle is:
(1)
(2) s
(3) 2 s
(4) 3 s
The equation of simple harmonic motion may not be expressed as (each term has its usual meaning):
(1)
(2)
(3)
(4)
If a particle is executing simple harmonic motion, then the acceleration of the particle:
(1) is uniform.
(2) varies linearly with time.
(3) is non-uniform.
(4) Both (2) & (3)
What is the phase difference between the acceleration and the velocity of a particle executing simple harmonic motion?
(1) Zero
(2)
(3)
(4) 2