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Question

The position, velocity and acceleration of a particle executing simple harmonic motion are found to have magnitudes 2 cm,1ms1 and 10ms2 at a certain instant. Find the amplitude and the time period of the motion.


A

4.9 cm, 0.28s

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B

9.8 cm, 1s

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C

4.9 cm, 2s

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D

9.8 cm, 0.28s

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Solution

The correct option is A

4.9 cm, 0.28s


Let's say the equation of SHM is

x=A sin(ω t+ϕ0).....(1)

dxdt=v=Aω cos(ω t+ϕ0)....(2)

d2xdt2=a=Aω2 sin(ω t+ψ0)....(3)

From equation (1) and (3)

A=ω2x

Given magnitude of acc=1000 cms2

Displacement=1 cm

As the sign of acceleration and displacement is always opposite

1000=ω2× 2ω=500

T=2πω=2π500=0.28 s

Also from (1) and (3) we have,

v=ωA2x2100=500A222

A=4.9 cm


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