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Question

A 100 gm block is connected to a horizontal massless spring of force constant 25.6 N/m and is free to oscillate on a horizontal frictionless surface. The block is displaced on a horizontal frictionless surface. The block is displaced by 3 cm along positive x - direction and released with an initial velocity of vi=163 cm.

Express position of block as function of time.


A

x=3 cos(16t+π2) cm

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B
x=3 cos(16t+π3) cm
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C
x=3.5 cos(16t+π6) cm
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D
x=3.2 cos(16t+π4) cm
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Solution

The correct option is B x=3 cos(16t+π3) cm

So far tile is at x=3 cm

And has v=163 cm/s

Hmmmm....... So where will the particle be if its seen as a projection of a particle doing uniform

Circular motion.

Since the particle is coming back it will be at B

Keeping this in mind Let's start.

Given m=0.1 kg

K=25.6 N/m

We know k=mω2ω=16

Particle is at x=3

v=163

From the above diagram we know ψ is greater then 90


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