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Question

A particle executing simple harmonic motion has angular frequency 6.28 s1 and amplitude 10 cm. Find (x) the speed when the displacement is 6 cm, from the mean position, (y) the speed at t=16 s assuming that the motion starts from rest at t=0.
(i) 25.1 cms1
(ii) 54.4 cms1
(iii) 50.2 cms1
(iv) 27.2 cms1


A

x - (ii); y - (iv)

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B

x - (iii); y - (iv)

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C

x - (i), y - (iii)

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D

x - (iii), y - (ii)

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Solution

The correct option is D

x - (iii), y - (ii)


(x)v=ωA2x2v=(6.28 s1)(10 cm)2(6 cm)2v=50.2 m/s

(y) At t=0, the velocity is zero, i.e., the particle is at an extreme. The equation for displacement may be written as

X=Acosω t

At t=16s,v=(0.1 m)(6.28 s1)sin(6.286)

v=(0.628 ms1)sinπ3

v=54.4 cm s1.


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