A particle executes simple harmonic motion about the point X =0 . At time t =0 it has displacement cm and zero velocity. If the frequency of motion is $0.25 s e c^{- 2}$ , find
(a) the time period,
(b) angular frequency,
(c) the amplitude,
(d) maximum speed,
(e) the displacement at t =3 sec and
(f) the velocity at t =3 sec.

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Solution

The correct option is C
3

Time period $T = \frac{1}{n} = \frac{1}{0.25 s e c^{- 1}} = 4 s e c .$
(b) Angular frequency $ω = \frac{2 π}{T} = \frac{2 π}{4} = \frac{π}{2} r a d / s e c = 1.57 r a d / s .$
(c) Amplitude is the maximum displacement from mean position. Hence, A=2 -0 =2 cm
(d) Maximum speed $V_{m a x} = A ω = 2, \frac{π}{2} = π = π c m / s = 3.14 c m / s$
(e) The displacement is given by $x = A s i n (e x + ϕ)$
At t =0, x =2cm, $∴ 2 = 2 s i n ϕ$
or $s i n ϕ = 1 = s i n 90^{\circ} o r ϕ - 90^{\circ}$
Now, at t=3 sec $\Rightarrow x = 2 s i n (\frac{π}{2} \times 3 + \frac{π}{2}) = 0$
(f) Velocity at x =0 is $V_{m a x}$ , i.e. 3.14 cm/se

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