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Question

A particle starts its motion from point A in the positive x direction in such a way that after every t sec it is at a distance of t2 from the starting point. Find its instantaneous velocity at t=4th sec also the rate at which velocity changes.


A

v = 8 m/s rate of velocity change = 2

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B

v = 16 m/s rate of velocity change = 4

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C

v = 8 m/s rate of velocity change = 8

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D

v = 16 m/s rate of velocity change = 16

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Solution

The correct option is A

v = 8 m/s rate of velocity change = 2


Given at any time the distance of the particle from origin will be equal to t2

In other words x = t2

To find instantaneous velocity we need dxdt

x(t)=t2

dxdt=2t

v = 2t

So at t = 4 sec

v = 2 \times 4 = 8 m/s

Rate at which velocity changes

V2V1t2t1

Let's take t1=0

t2=4

V at t2=8m/s

So rate = 8040=2

Also rate can be found by dvdt

V = 2t

So dvdt=2


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